<?xml version="1.0" encoding="utf-8"?>
<rss version="2.0">
  <channel>
    <title>OPUS 4 Latest Documents RSS Feed</title>
    <description>Latest documents</description>
    <link>http://opus4.kobv.de/opus4-ubbayreuth/index/index/</link>
    <pubDate>Fri, 26 Apr 2013 10:49:07 +0200</pubDate>
    <lastBuildDate>Fri, 26 Apr 2013 10:49:07 +0200</lastBuildDate>
    <item>
      <title>Crystalline-core micelles based on triblock terpolymers with polyethylene middle blocks</title>
      <link>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/1157</link>
      <description>This thesis is focused on the crystallization-induced structure formation of polyethylene containing triblock terpolymers in organic solvents to surface-compartmentalized worm-like crystalline-core micelles (wCCMs). Obtaining profound knowledge of the parameters controlling the self-assembly process allowed the production of a variety of complex one-dimensional micellar architectures with many potential applications, such as adaptive surfactants.&#13;
At first, the basic parameters that control the crystallization-induced self-assembly were explored using symmetric polystyrene-block-polyethylene-block-poly(methyl methacrylate) (PS-b-PE-b-PMMA) triblock terpolymers and a PS-b-PE-b-PS triblock copolymer. In good solvents for the PE block, e.g. THF and toluene, the selective formation of wCCMs was observed over a wide range of concentration, applied crystallization temperature and polymer composition. Whereas wCCMs produced by PS-b-PE-b-PS showed a homogeneous PS corona, a patch-like compartmentalization of the corona was observed if the micelles were formed by PS-b-PE-b-PMMA. As THF shows equal solvent quality for both corona blocks, wCCMs with almost alternating PS and PMMA compartments of about 15 nm were observed in this solvent. However, if structure formation was conducted in bad solvents for PE, such as dioxane or dimethylacetamide, spherical micelles with amorphous PE cores were formed already before crystallization. Hence, the subsequent crystallization of PE resulted in spherical CCMs with a patchy or a homogeneous corona depending on the used triblock. These findings allow the highly selective production of stable spherical or worm-like CCMs from the same polymer.&#13;
As the corona structure of the patchy micelles self-assembled from triblock terpolymers was mainly deduced from transmission electron microscopy (TEM) performed on dried samples, a small-angle neutron scattering (SANS) study was performed in order to elucidate the morphology in solution. Therefore a partly deuterated triblock terpolymer was synthesized and measured at different contrasts to allow the selective detection of the different corona compartments. The resulting SANS curves could be interpreted using a form factor model for core-shell cylinders with alternating PS and PMMA hemishells including interparticle interactions, thus validating the TEM observations. Notably, Janus-type and patchy cylinders can be clearly distinguished using the applied form factor model.&#13;
Moreover, the controlled formation of wCCMs with tunable corona composition and structure was achieved using the cocrystallization of different triblock copolymers. Via random cocrystallization of PS-b-PE-b-PMMA and PS-b-PE-b-PS the corona morphology could be tuned continuously from a mixed corona at low PMMA content over spherical PMMA patches of increasing number and size to alternating PS and PMMA patches. This approach allows to manufacture wCCMs with predefined corona structure omitting the need to synthesize a new tailor-made triblock terpolymer for every desired morphology.&#13;
By establishing the controlled crystallization-driven self-assembly of triblock terpolymers with PE middle blocks, it was further possible to prepare wCCMs with predefined average lengths up to 500 nm and length polydispersities as low as Lw/Ln = 1.1. Here, self-assembled spherical CCMs of PS-b-PE-b-PS were used as seeds for the controlled growth of PS-b-PE-b-PS unimers. Upon further addition of PS-b-PE-b-PMMA unimers these grew epitaxially onto the preexisting wCCMs, resulting in triblock co-micelles that consisted of middle blocks with a homogeneous PS corona and outer blocks with alternating PS/PMMA compartments. These structures represent not only the first block co-micelles including blocks with a patchy corona, but also the first ones produced from purely organic block copolymers.&#13;
In view of application, the ability of patchy wCCMs formed by PS-b-PE-b-PMMA to stabilize interfaces was investigated using pendant-drop tensiometry. The observed reduction of the interfacial tension at the toluene/water interface was significantly higher than that of comparable triblock terpolymer single chains and that of wCCMs with a homogeneous PS corona. Interestingly, the obtained equilibrium interfacial tension equaled that of Janus cylinders with similar dimensions. To explain this unexpected finding the corona chains were proposed to adapt to the interface via selective collapse and shielding of the incompatible part of the corona chains. Studying wCCMs formed by several triblock terpolymers with different compositions, the interfacial activity was found to increase with increasing overall length of the corona chains, and to a certain extent with the molar fraction of PS units in the corona.</description>
      <author>Joachim Schmelz</author>
      <category>doctoralthesis</category>
      <guid>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/1157</guid>
      <pubDate>Fri, 26 Apr 2013 10:49:07 +0200</pubDate>
    </item>
    <item>
      <title>Synthesis, Characterization, and Properties of Tailored Functional Block Copolymers </title>
      <link>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/731</link>
      <description>This thesis covers the design, synthesis, characterization, and application of functional block copolymers (BCP) based on a polymer analogous approach and includes three main subjects. The first subject is the implementation of a specially constructed reactor setup for sequential anionic polymerization that allows parallel block copolymer synthesis based on one identical A-block on a lab scale. For this reason, this setup facilitates the preparation of block copolymer series in a combinatorial fashion. It consists of one main reactor and three secondary reactors with individual temperature control. The addition of monomers or additives to each reactor can be handled separately. AB diblock copolymer and ABC triblock copolymer series were prepared with different lengths of the final block as well as different chemical structures of the last block. The second subject covers the synthesis, characterization, processing and application of new liquid crystalline azobenzene-containing block copolymers designed as materials for holographic data storage. Therefore, these polymers contained an amorphous, optical inert poly(methyl methacrylate) (PMMA) or polystyrene (PS) matrix and a functional segment based on polyhydroxystyrene (PHS). Different lengths of flexible spacers and/or mixtures of two spacer lengths were employed to connect the mesogenic chromophores to the polymer backbone. The structure-property relation of functionalized BCPs and the resulting mesophase was investigated. Holographic experiments were conducted on selected examples of the photo-addressable polymers. Smectic annealed samples or amorphous quenched samples were obtained by different sample preparation methods to investigate the influence of the liquid crystalline order. While the initial sensitivity to light induced orientation of the polymer systems remained unaffected, the writing times and level of postdevelopment were improved for quenched samples. Variation in spacer lengths resulted in decreasing smectic order with decreasing spacer length as well as for mixtures of two different spacer lengths promoting lower writing times in the holographic experiments. Additionally, the temperature dependence of the temporal evolution of the refractive index modulation in the smectic polymers was studied. A significant decrease of writing times and an enhancement of the postdevelopment were revealed at elevated temperatures. Stable holographic gratings could be obtained even at 100 °C. 1.1 mm thick samples, that are a prerequisite for volume holographic data storage with a high data storage density, were prepared by injection molding of blends of photoaddressable BCPs with PMMA or PS. Preliminary results confirmed the long-term stability of inscribed holographic gratings and demonstrated angular multiplexing of holographic volume gratings. The third subject covers the synthesis and characterization of new cyanobiphenyl-containing ABA triblock copolymers and their application as BCP gelators for the low molecular weight liquid crystal (LC) 4-cyano-4’-(pentyl)biphenyl (5CB). Based on the selective solubility of the A and B blocks in the nematic solvent, ABA triblock copolymers can be used for the thermoreversible gelation of 5CB. To this end, ABA and ABA’ triblock copolymers comprised of PS A-blocks and a cyanobiphenyl-functionalized PHS B-block with a high degree of polymerization were prepared by the combination of anionic polymerization, using two different synthetic routes, and polymer analogous attachment of the mesogens. Series of linear gelators were prepared with variations in B-block length, A-block lengths and star shaped BCPs by coupling linear ABA’ triblock copolymers. Structure-property relations of the cyanobiphenyl-functionalized polymers regarding the mesophase characterization revealed a dependence of solubility in the nematic 5CB on spacer length. A comprehensive study was conducted to investigate the influence of the BCP backbone and architecture on the gelation of 5CB. Oscillating rheology measurements and thermal characterization were employed to investigate the thermoreversible LC gels. Most of the BCP gelators achieved gelation of 5CB at a mass concentration of 5 wt%. The properties of the different gels where compared at this fixed concentration. The influence of the gelator backbone on the gel properties was investigated by comparing different sets of triblock copolymers. While a short functionalized B-block resulted in high network density and, thus, a high elasticity of the gel the length of the A-blocks influenced the node stability. The LC gel using a star-shaped gealtor exhibited a significantly higher elasticity than with the respective linear block copolymer gelator.</description>
      <author>Robin Pettau</author>
      <category>doctoralthesis</category>
      <guid>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/731</guid>
      <pubDate>Mon, 05 Dec 2011 08:18:07 +0100</pubDate>
    </item>
    <item>
      <title>Synthesis of reponsive homo- and block copolymers - application to the generation of inorganic-organic nanohybrids</title>
      <link>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/721</link>
      <description>Responsive homopolymers and multi-responsive block copolymers were prepared via reversible addition-fragmentation chain transfer (RAFT) and atom transfer radical polymerization (ATRP). Self-assembly in solution depending on environmental stimuli was investigated and exploited to create responsive micelles. New cross-linking strategies were thoroughly performed in aqueous solution to allow a controlled preservation and a high shape-persistence of the colloid particles, even when exposed to non-selective environmental conditions. The synthesis of poly(N-isopropylacrylamide) (PNIPAAm) was investigated by ATRP for subsequent polymer-protein nanohybrid generation. This temperature-responsive polymer was polymerized directly in pure water at a low temperature (4 ºC) by using a functional ATRP initiator which allows post-polymerization conjugation. Without the addition of Cu(II), the kinetics were extremely fast, typically less than one minute for a full conversion. By adjusting the ratio of Cu(I)/(Cu(II) and selecting a very active ligand, all polymerizations proceeded in a controlled fashion to near quantitative conversion without evidence of termination. N-isopropylacrylamide and acrylic acid (AA) were also homopolymerized by RAFT in aqueous media using a novel strategy. Instead of using a diazo-initiator, which generally decomposed at high temperatures, gamma-irradiation was used to initiate polymerization at ambient temperature. This type of radiation has many advantages. A very tiny and constant amount of radicals can be generated, which is perfect for the RAFT process. Moreover, the rate of initiation only has a low level of dependence on temperature and can be used in a wide range of temperatures. Finally, compared to UV-initiation, gamma-irradiation can penetrate the reaction solution deeper and without evidence of irreversible decomposition of the dithioester end group. Therefore, RAFT polymerizations of NIPAAm and AA were achieved with a very good level of control, even at high monomer conversions. This new process was then extended to many other water-soluble monomers for generating homopolymers and block copolymers. Among these, acrylamide, N,N-dimethylacrylamide, 2-hydroxyethyl acrylate and poly(ethylene glycol) methacrylate gave the best results. This technique proved to be very efficient at generating very long and narrowly distributed polymers (up to a degree of polymerization of 10,000) and at designing block copolymers. High molecular weight PNIPAAm-b-PAA copolymers, synthesized by RAFT polymerization under gamma-radiation, were used to generate multi-responsive cross-linked micelles. These block copolymers were self-assembled in water at pH 7 by increasing the temperature over the lower critical solution temperature. The PNIPAAm became hydrophobic and formed the micellar core and the hydrophilic PAA block generated the corona which prevented full aggregation of the system. Then, by amidification at elevated temperatures of the carboxylic moieties via a trifunctional primary amine, the structure was found to remain even after cooling down the system. The shell-cross-linked micelles formed were utilized to generate inorganic-organic nanohybrids by the in situ reduction of gold or silver salts to generate nanoparticles inside the nanocarrier. Another strategy of cross-linking was also investigated by using amino-functional silsesquioxane nanoparticles. In water around neutral pH values and room temperature, these particles interacted with the carboxylic groups of a high molecular weight PNIPAAm-b-PAA by hydrogen bonding and ionic interactions to generate an insoluble complex. Due to the presence of the hydrophilic PNIPAAm block, defined spherical micelles were obtained. The inorganic-organic particles were successfully cross-linked by subsequent amidification to preserve the structure, even at a high pH. Different temperature properties of the hybrids were observed depending on the pH value, due to the residual charge in the micellar core. At a neutral pH, shrinking of the corona was observed, while at a high pH (pH 13) a fully reversible aggregation of the system occurred.</description>
      <author>Pierre-Eric Millard</author>
      <category>doctoralthesis</category>
      <guid>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/721</guid>
      <pubDate>Mon, 17 Oct 2011 08:51:42 +0200</pubDate>
    </item>
    <item>
      <title>Polymeric Nanoparticles for the Modification of Polyurethane Coatings</title>
      <link>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/705</link>
      <description>Rubber-based nanomodifiers were successfully synthesized following two different strategies and were used as impact modifiers in polyurethane (PU) automotive clearcoats to improve chip resistance. Various narrowly distributed polybutadiene-b-poly(methyl methacrylate) (B-M) block copolymers differing in composition and molecular weights were synthesized and studied with respect to their self-assembly in organic selective solvents. Dynamic light scattering and transmission electron microscopy measurements revealed that spherical micelles were obtained in acetonitrile for all block copolymers, independently of the polymer concentration. Their radii varied from 11 to 69 nm depending on the molecular weight of the initial linear block copolymer and their aggregation behavior in acetonitrile followed the model established by Förster and Antonietti for strongly segregated block copolymers. In DMF and acetone, block copolymers with 85 %wt PMMA were dissolved as unimers. For lower methacrylate contents, the sizes of the obtained spherical micelles were decreasing from DMF to acetone independently of the polymer concentration. The calculated interaction parameters confirmed acetonitrile as the best solvent for PMMA followed by DMF and acetone as the poorest one. The size of the spherical aggregates could be tuned by the molecular weight and/or by the nature of the selective solvent. Polybutadiene-b-poly(n-butly acrylate) (B-nBA), polybutadiene-b-poly(n-butyl methacrylate) (B-nBMA) and polybutadiene-b-poly(t-butyl methacrylate) (B-tBMA) did not show such a large choice in selective solvents and spherical micelles were obtained in DMF, DMAc and acetone respectively. Cross-linking of the polybutadiene core of the obtained micelles was performed in solution using two different methods: cold vulcanization and radical reaction upon the decomposition of a photo-initiator under UV radiation. Both methods allow retaining the spherical shape of the micelles leading to narrowly distributed non fusible nanospheres. In the case of B-M nanoparticles, the degree of cross-linking seemed independent of the amount of cross-linker used. Unlikely, B-nBMA and B-nBA nanoparticles exhibited increasing degrees of cross-linking with the amount of photo-initiator introduced. Their degrees of cross-linking were particularly lower than those of B-M nanoparticles. The hydrolysis of the t-BMA corona of the nanoparticles obtained from B-tBMA linear block copolymers self-assembly in selective solvent resulted in water soluble nanoparticles carrying acid functions and thus potentially exhibiting pH-responsive behavior. Various hyperstars consisting of a hyperbranched PB core and (meth)acrylate arms were synthesized by anionic self-condensing vinyl copolymerization (SCVCP) of divinylbenzene and butadiene followed by the anionic polymerization of the linear (meth)acrylate arms. The amount of hyperbranched products resulting from SCVCP could be enhanced by introducing additional DVB to the reaction while polymerizing. The topology of the hyperbranched PB cores was confirmed by viscosity measurements. All Mark-Houwink-Sakurada exponents were significantly below the value for linear PB. The initiation of (meth)acrylate arms was confirmed by NMR spectroscopy. Upon the arm-growth reaction, the branched topology was retained as witnessed by further viscosity measurements. The introduction of cross-linked nanoparticles based on linear block copolymers did not disturb the transparency of PU coatings. Even after curing reaction, the nanoparticles were well-dispersed into the coating. TEM observations confirmed this last result where neither aggregation nor flocculation of the cross-linked nanoparticles was observed. Hyperstar polymers were found to undergo self-assembly upon the curing reaction leading to “onion-like” structured aggregates, in the case of PMMA hyperstars, with sizes as large as 200 nm. Aggregates of the same size order were observed for the other hyperstars but no defined structures were found. For all hyperstar modified coatings, the transparency of the films was altered. In both cases, cross-linked nanoparticles and hyperstar modified coatings, improvements of chip resistance were observed. The improvements were even better with increasing amount of cross-linked nanoparticles but no effect was noticed on the hardness of the coatings. Similar trends were observed for the hyperstar modified coatings.</description>
      <author>Sandrine Tea</author>
      <category>doctoralthesis</category>
      <guid>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/705</guid>
      <pubDate>Thu, 11 Aug 2011 09:42:52 +0200</pubDate>
    </item>
    <item>
      <title>"Smart" Hydrogels based on Trishydrophilic Triblock Terpolymers</title>
      <link>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/668</link>
      <description>The work presented in this thesis focuses on the synthesis of double stimuli-responsive, trishydrophilic triblock terpolymers and their utilization for the construction of “smart” hydrogel systems, responding to a variety of external stimuli. The central focus was put on ABC triblock terpolymers composed of a pH-sensitive A block, a water soluble B block and a thermo-sensitive or multi-responsive C block. This concept was used for the construction of hydrogels responding independently to pH, temperature, and UV light. It was further applied to the formation of polymer/nanoparticle hybrid micelles suitable for the formation of magneto-responsive hydrogels (ferrogels). At first, a new route for the synthesis of block copolymers, containing ethylene oxide and glycidol derivatives, was developed. The crucial aspect of this procedure, based on sequential anionic polymerization, was the utilization of the phosphazene base t-BuP4, enabling the anionic polymerization of epoxide monomers in the presence of lithium counterions. It was shown, that ethoxyethyl glycidyl ether polymerizes easily under the established polymerization conditions without unwanted termination. Hence, we were able to synthesize well-defined block copolymers containing vinyl and epoxide monomers in a one-pot reaction, without performing additional intermediate steps. This new synthetic route was then utilized to synthesize a series of poly(2-vinylpyridine)-block-poly(ethylene oxide)-block-poly(glycidyl methyl ether-co-ethyl glycidyl ether) (P2VP-b-PEO-b-P(GME-co-EGE)) triblock terpolymers suitable for pH and temperature dependent hydrogel formation. The reversible gelation for this particular system relies on two distinct mechanisms. Under conditions, where only one outer block is insoluble, core-shell-corona (CSC) micelles are formed, resulting in gelation via close cubic packing of the micelles. On the other hand, the micelles are also able to crosslink through their corona when both outer blocks are insoluble. As a direct consequence, a temperature triggered gel-sol-gel transition occurred at pH = 7, accompanied by a unique gel strengthening. Solubility and gelation studies were performed by DLS, rheology and SANS. The influence of polymer concentrations and block lengths on the gelation behavior and gel properties was studied. In order to derive information about the exact structure of the cubic lattice formed in the low temperature gel phase (simple cubic or body centered cubic), a 19 wt% aqueous solution of a particular P2VP-b-PEO-b-P(GME-co-EGE) triblock terpolymer at pH = 7 was further investigated using SANS under steady shear. By application of shear stress, the irregularly arranged polydomains of the sample oriented macroscopically along a preferred direction, which led to highly defined, strongly anisotropic 2D scattering patterns. The interpretation of these patterns confirmed the presence of a body centered cubic packing. The gel-sol transition upon temperature increase can be explained by a shrinkage of the shell of the CSC micelles. To increase the versatility of the established hydrogel concept, we further synthesized ABC triblock terpolymers with different responsive polymers as C blocks. This required an alternative synthetic route, combining anionic polymerization and ATRP via “click” chemistry. After optimization of each synthetic step, exemplary poly(2-vinylpyridine)-block-poly(ethylene oxide)-block-poly(oligo(ethylene glycol) methacrylate) (P2VP-b-PEO-b-POEGMA) and poly(2-vinylpyridine)-block-poly(ethylene oxide)-block-poly(dimethyl- aminoethyl methacrylate) (P2VP-b-PEO-b-PDMAEMA) triblock terpolymers were synthesized, respectively, and characterized regarding their solubility and gelation behavior. At pH &gt; 5, P2VP-b-PEO-b-PDMAEMA forms CSC micelles with a P2VP core, and a pH- as well as thermo-sensitive PDMAEMA corona. This particular structure represents a hydrogel, whose temperature dependent response can be easily changed from a gel-sol to a sol-gel transition by increasing the pH from 8 to 9. At pH = 7.5 on the other hand, gel formation is induced by the addition of hexacyanocobaltate(III) ions due to electrostatic interactions between the multivalent cobaltate ions and the charged DMAEMA units, causing a physical crosslinking of the CSC micelles. The gel can subsequently be disintegrated by an exposure to UV-light, based on a UV-catalyzed aquation of the trivalent hexacyanocobaltate(III) ions ions to divalent aquapentacyanocobaltate(III)-ions. In the last part, a new approach was developed to create a novel type of magnetic field-responsive hydrogels (ferrogels), in which the nanoparticles are tightly bound to the polymer matrix. The P2VP block of the previously synthesized P2VP-b-PEO-b-P(GME-co-EGE) triblock terpolymers was quaternized to a low extent and complexed with negatively charged, citrate stabilized maghemite (γ-Fe(III)-oxide) nanoparticles. Using different analytical methods it was shown that well-defined CSC hybrid micelles were obtained with cores formed by a complex of P2VP and 3-4 nanoparticles per core. Concentrated solutions of these micelles are able to form gels depending on temperature, as revealed by rheology measurements. Due to the presence of the maghemite particles, it is possible to induce gelation via remote heating using AC magnetic fields, which was demonstrated by high frequency magnetocalorimetry.</description>
      <author>Stefan Reinicke</author>
      <category>doctoralthesis</category>
      <guid>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/668</guid>
      <pubDate>Fri, 15 Apr 2011 11:30:07 +0200</pubDate>
    </item>
    <item>
      <title>Donor-Acceptor Block Copolymers in Organic Electronics - Spectroscopy, Charge Transport, Morphology and Device Application </title>
      <link>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/650</link>
      <description>Organic electronic devices have attracted increasing attention over the last decade. The use of organic materials allows the creation of large area, flexible and low-cost lightemitting devices, transistors and photovoltaics. The development of new organic materials contributes to a successful commercialisation. The present work deals with the characterisation of novel donor-acceptor block copolymers and their constituent polymer blocks that are well-suited for organic photovoltaics. Block copolymers phase-separate and self-assemble into nanostructured morphologies due to the covalent linkage of the two blocks. The interplay between intermolecular interactions, mesoscopic crystalline structures and the block copolymer microphase separation determine the material properties and therefore the device characteristics. Thus, these block copolymers offer a unique platform to study the electronic and photophysical properties of confined donor-acceptor systems. This work is concerned with the fundamental characterisation of these properties as well as the application in organic field effect transistors and organic solar cells. The acceptor polymer block poly(perylene bisimide acrylate) (PPerAcr) consists of perylene bisimide (PBI) units that are linked to a polyacrylate backbone. We have investigated the homopolymer PPerAcr, a model block copolymer in conjunction with polystyrene (PS), as well as fully functionalised block copolymers with a donor block either made of poly(vinyl triphenylamine) (PvTPA) or poly(3-hexylthiophene) (P3HT). These polymers offer a set of electronically active materials with several hierarchical structures: The PBI moieties feature intermolecular pi-pi interactions that lead to crystalline side chains of PPerAcr that form a lattice of one-dimensional stacks of PBI. Further nanoscopic structures are induced by the combination of PPerAcr with another amorphous block or another semi-crystalline block such as P3HT due to phase separation. Since PPerAcr is used as an electron transporting material in all subsequent block copolymers, its structural, optical and electronic properties are investigated in detail. The intermolecular interactions of the PBI moieties favour not only charge transport, but also affect the optical properties, due to the electronic coupling of the transition dipole moments. Thus, optical spectroscopy such as absorption and fluorescence spectroscopy give access to information about the intermolecular packing, which is correlated with temperature dependent X-ray diffraction studies. The strong intermolecular packing of the PBI units can be overcome by solvent-vapour exposure. This is especially helpful to induce polymer chain mobility, enabling the completion of block copolymer phase separation for example. This method was studied in detail by means of in-situ spectroscopy and ellipsometry during controlled solvent-vapour exposure. Spincoated films of PvTPA-b-PPerAcr exhibit an incomplete phase separation and can be transformed into an ordered lamellar morphology by solvent-vapour annealing. In addition to PvTPA, we have characterised further poly(triarylamines) with different electron-rich substituents at the TPA units in OFETs. All these polymers are amorphous side-chain polymers. We found the charge carrier mobility to be independent of the molecular weight, though allowing an adjustment of their thermal properties for device fabrication. This is in contrast to P3HT, which is a semi-crystalline, conjugated main chain polymer. X-ray diffraction, steady state and time-resolved spectroscopy, as well as the transistor device characterisation were employed to establish a charge transport - morphology relation for the donor-acceptor block copolymers P3HT-b-PPerAcr containing two crystalline blocks. Controlling the crystallisation preferences of the two blocks leads to a new processing route for OFETs with tunable p-type, ambipolar, or n-type transport through a one-time thermal annealing step. The application of P3HT-b-PPerAcr in organic photovoltaic devices showed also very promising results with high external quantum efficiencies. Subsequently, the photophysics of P3HT-b-PPerAcr by means of absorption and fluorescence spectroscopy as well as time-resolved transient absorption spectroscopy were investigated. All block copolymers exhibited an ultra-fast charge-pair formation and a strongly reduced photoluminescence, suggesting domain sizes of only some nanometres. Although efficient charge separation could be accomplished, a good charge percolation was lacking due to small domain sizes. Furthermore the herein presented results emphasis the fundamental importance of morphology and interfacial properties such as crystallinity. These findings motivate the further use of block copolymers as compatibilising agents for polymer blends to improve their interface and morphology.</description>
      <author>Sven Hüttner</author>
      <category>doctoralthesis</category>
      <guid>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/650</guid>
      <pubDate>Fri, 18 Mar 2011 10:23:43 +0100</pubDate>
    </item>
    <item>
      <title>Crystalline Morphologies of Poly(butadiene)-b-Poly(ethylene oxide) Block Copolymers in n-Heptane</title>
      <link>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/535</link>
      <description>This thesis reports the development of micellar crystalline morphologies in a selective solvent. The phase diagram of solution morphologies as a function of the molecular composition of the semicrystalline poly(butadiene)-b-poly(ethylene oxide)(PB-b-PEO) block copolymers was investigated. The crystalline morphologies discussed here have been generated from selective solvent condition (70°C in n-heptane) via two thermal pathways: (A) by direct immersion into liquid nitrogen, where n-heptane becomes a poor solvent for both blocks at very low temperatures, and (B): by quenching to the crystallization temperature of the PEO, i.e., determined by the length of PEO block. In pathway B, n-heptane is a poor solvent only for the PEO block. At 70°C, the block copolymers self-assembled into micellar structures consisting of a PEO molten core and a soluble PB corona. As crystallization takes place in the PEO core, a fast quenching into liquid nitrogen results in the formation of crystalline micelles retaining the shape present in the molten state at 70°C (pathway A). In the case of pathway B, the competition between the PEO core crystallization and the self-assembly of the micellar units, is the driving force that dictates the morphological development, therefore crystallization breaks out the melt morphology. These studies, demonstrated that the PB-b-PEO block copolymers are a promising system models for developing a general route towards tunable crystalline morphologies. In a symmetric PB-b-PEO block copolymer, crystalline morphologies like spheres and meanders formed upon quenching into liquid nitrogen and at 30°C, respectively. The meander morphology consisting of branched lamellae with a crystalline PEO ribbon-like core and ellipsoidal endings was observed for the first time in solution. Investigations of the crystal development revealed that this structure formed via crystallization-induced aggregation of spherical micelles upon cooling. A systematic study of the effect of crystallization kinetics on the formed morphology upon crystallization-induced aggregation of spherical micelles of a symmetric PB-b-PEO block copolymer was discussed. We demonstrated that the resulting morphology is controlled by two competitive effects, namely, by the nucleation and growth of the PEO micellar core: at lower crystallization temperatures (Tc &amp;#8804; 30°C), a high nucleation rate leads to a meander-like morphology formation, whereas at higher crystallization temperatures (Tc &gt; 30°C), a low nucleation rate favors the formation of twisted lamellae. For a highly asymmetric PB-b-PEO block copolymer, crystallization at -30°C induced the formation of crystalline micelles retaining the spherical shape present in the molten state at 70°C. However, a quenching into liquid nitrogen facilitated a transition to rod-like micelles caused by changes of solvent quality for the PB coronar chains. This triggers the onset of an interfacial instability, therefore the spherical micelles preferred to reorganize into a morphology with a smaller interfacial curvature. The low crystallinity of the PEO core imposed a stronger tendency of the rods to aggregate and to thicken into more stable morphologies as needle-like structures, with a preferred growth direction along the long axis. Finally, the micellar morphology diagram of the PB-b-PEO block copolymers has been studied as a function of the crystallization temperature and molecular composition of the blocks via two thermal pathways. Pathway A allowed morphological transitions from spheres to rods, worms or twisted cylinders with the increase of the crystalline content of the PEO core. In Pathway B, the sequence of spheres, cylinders, lamellae, platelets and dendrites structures is observed with the increases of the PEO block length. The aggregation number of the spherical micelles is affected by the weight fraction and crystallinity of the PEO block. Moreover, an increased chain folding was observed at a high PEO composition which reduced the lamellar thickness of the crystals. The competition between the PEO core crystallization and the aggregation of the micellar units leads to coexistence regions of lamellae with platelets and cylinders with platelets. The novelty of this thesis relies on the development of novel crystalline morphologies in a selective solvent, as well as, in the detailed analysis of the major parameters that govern morphological formation in a controlled manner.</description>
      <author>Adriana Mirela Mihut</author>
      <category>doctoralthesis</category>
      <guid>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/535</guid>
      <pubDate>Thu, 11 Feb 2010 10:17:15 +0100</pubDate>
    </item>
    <item>
      <title>Mesoscale Modeling of Phase Behavior in Thin Films of Cylinder-Forming ABA Block Copolymers</title>
      <link>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/523</link>
      <description>In this thesis modeling results on structure formation in thin films of cylinder-forming block copolymers are presented and discussed. The computational study of the equilibrium phase behavior in thin films is complemented by detailed comparison with a real experimental system. Additionally, the dynamics in such films at various length and time scales (the dynamics of individual defects and the dynamics of surface relief structures) is studied. The strength of the presented thesis is the comparison of thin block copolymer film equilibrium and dynamic behavior in experiments and in computer simulations. This comparison supplies an in-depth understanding of the processes in thin films and near the surfaces in thick films and allows to identify the important control parameters of nanopattern formation. Chapters 4 and 5 report on the phase behavior of thin films of asymmetric block copolymers. In addition to the surface induced alignment of hexagonally ordered cylinders, an adjustment to the planar symmetry of the surface by formation of surface reconstructions is found to dominate the phase behavior in thin films. The large parameter space covered by the simulations allows to distinguish the effects of the two constraints characteristic for thin films: the surface field and the film thickness. The deviations from the bulk cylinder structure, both in the vicinity of surfaces and in thin films are identified as surface reconstructions. The stability regions of different phases are modulated by the film thickness via interference and confinement effects. The results give evidence of a general mechanism that govern the phase behavior in thin films of modulated phases: The interplay between the strength of the surface field and the deformability of the bulk structure determines how the system rearranges in the vicinity of the surface. Chapters 6 and 7 present a systematic study of defects in thin films of cylinder-forming block copolymers. In particular, the peculiarities of both classical and specific topological are considered in detail, and a strong relationship between the defect structures and the chain mobility in block copolymers is observed. In the systems studied, representative defect configurations provide connectivity of the minority phase in the form of dislocations with a closed cylinder end or classical disclinations with incorporated alternative, nonbulk structures with planar symmetry. In solvent-annealed films with enhanced chain mobility, the neck defects (bridges between parallel cylinders) were observed. This type of nonsingular defect has not been identified in block copolymer systems before. It is shown, that topological arguments and 2D defect representation, sufficient for lamellar systems, are not sufficient to determine the stability and mobility of defects in the cylindrical phase. In-situ scanning force microscopy measurements are compared with the simulations based on DDFT. The close match between experimental measurements and simulation results suggests that the lateral defect motion is diffusion-driven. Finally, the morphological evolution is considered with the focus on the motion and interaction of the representative defect configurations. Chapter 7 reveals dynamic simulations and in-situ SFM measurements of defect annihilation. Along with the lateral movement of defects, the annihilation frequently proceeds through local structural transitions. The role of the observed structural evolution is discussed in the context of the equilibrium phase behavior of cylinder-forming thin films, studied in chapters 4-5. Chapter 8 presents a study of terrace formation in thin films of a cylinder-forming block copolymers by a computational DDFT method. The results are compared with in situ SFM measurements of SBS block copolymer thin films. This chapter focuses on the early stage of terrace formation, where 80% of height changes occur. Experimental and simulation results agree that the change of the local height is strongly connected to the changes in the local microstructure. The detailed pathways of the structural transitions, as revealed by simulations, suggest a diffusion of block copolymer chains along the microstructure interfaces and indicate an important role of cylinders with necks as a material-transport-channel between neighboring terraces in thin cylinder-forming films. Both systems (in experiment and in simulations) show excellent quantitative agreement in detail of structural phase transitions and in the dynamics of the step development, suggesting that the underlying transport mechanisms are governed by diffusion.</description>
      <author>Andriana Horvat</author>
      <category>doctoralthesis</category>
      <guid>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/523</guid>
      <pubDate>Thu, 17 Dec 2009 12:20:45 +0100</pubDate>
    </item>
    <item>
      <title>Novel Semiconductor Block Copolymers for Organic Electronic Devices: Synthesis, Properties and Applications</title>
      <link>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/505</link>
      <description>Diese Arbeit beschreibt die Synthese und Charakterisierung von neuartigen, maßgeschneiderten Donor-Akzeptor (D-A) Blockcopolymeren mit elektronisch funktionellen Blöcken, sowie deren Anwendung in organischen Feldeffekttransistoren und organischen Solarzellen. Die hergestellten D-A Blockcopolymere können in zwei Klassen unterteilt werden: Blockcopolymere mit einem amorphen und einem kristallinen Block und Blockcopolymere mit zwei kristallinen Blöcken. Die Synthese dieser neuen Materialien verlangt die geschickte Kombination von klassischer organischer Chemie mit einer oder zwei Polymerisationsmethoden. Die Besonderheit solcher aufwendigen Blockcopolymere liegt in ihrer Fähigkeit zur Mikrophasenseparation. Die dadurch entstehenden Domänengrößen liegen im Bereich der Exzitonendiffusionslänge, wodurch D-A Blockcopolymere als äußerst vielversprechend für Ladungstrennung und Ladungstransport gelten. Die Selbstaggregation der D-A Blockcopolymere wird vom Zusammenspiel verschiedener Kräfte geleitet: Kristallisation eines oder zweier Blöcke und Mikrophasenseparation. Solche Materialien mit definierten Moleküleigenschaften sind bisher sehr wenig erforscht und ermöglichen es, die D-A Grenzfläche in dünnen Filmen präzise einzustellen. Um definierte Blockcopolymerarchitekturen herzustellen, wurden zwei verschiedene Polymerisationsmethoden mit lebendem Charakter verwendet, kombiniert und angepasst: Nitroxid-vermittelte radikalische Polymerisation (NMRP) und Grignard Metathese Polymerisation (GRIM). Die Grignard Metathese Polymerisation wurde erfolgreich optimiert und verwendet, um mehrere Poly(3-hexylthiophen)P3HT-Blöcke mit kontrolliertem Molekulargewicht und niedriger Polydispersität herzustellen. Weiterhin wurde eine einfache und zielgerichtete Eintopfreaktion entwickelt, um P3HT-Makroinitiatoren für die NMRP herzustellen. Ausgehend von diesen Makroinitiatoren wurden mehrere definierte Blockcopolymere mit P3HT und Perylen Bisimidacrylat PerAcr mit unterschiedlicher Komposition und unterschiedlichem Molekulargewicht synthetisiert. Die Besonderheit von P3HT-b-PPerAcr liegt in der kristallin-kristallinen Blockcopolymerarchitektur, wobei das erste Segment hauptkettenkristallin und das zweite Segment seitenkettenkristallin ist. Der kristallin-kristalline Charakter wurde mittels differentieller Wärmeflußkalorimetrie und Röntgenstreuung bestätigt, wobei eine Koexistenz von lamellaren P3HT- und eindimensionalen PPerAcr Stapeln festgestellt wurde. Die Koexistenz dieser Aggregate ist maßgeblich von der Komposition, dem Molekulargewicht, und der Vorbehandlung von P3HT-b-PPerAcr abhängig. Während thermisch vorbehandelte Proben eine verstärkte Ausbildung von kristallinen PPerAcr Domänen zeigen, fördert die Lösungsmitteldampfbehandlung die Aggregation von P3HT. Dieser Effekt wird übereinstimmend bei der Untersuchung der optischen, thermischen, morphologischen und elektrischen Eigenschaften gefunden. Die Herstellung von organischen Solarzellen mit P3HT-b-PPerAcr als aktiver Schicht ergab einen Rekordwert der externen Quantenausbeute von 31 %, was für die beiden Komponenten P3HT und Perylenbisimid den höchsten gemessenen Wert darstellt.</description>
      <author>Michael Sommer</author>
      <category>doctoralthesis</category>
      <guid>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/505</guid>
      <pubDate>Fri, 06 Nov 2009 11:20:13 +0100</pubDate>
    </item>
    <item>
      <title>New Approaches to the Synthesis of Porous and/or High Surface Area Transition Metal Oxides</title>
      <link>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/459</link>
      <description>We have explored the applicability of hypothesized approaches to the synthesis of porous and/or high surface area transition metal oxides. In addition, applicability and advantage of charged templates where strong Coulomb interactions favour the supramolecular arrangements/assembly were studied. The problems related with the dynamics of polymeric nanostructures for the synthesis of predesigned mesostructures could be avoided by crosslinking micelles, strictly speaking non-continuous phase in the bulk structure. Thereby, we presented a new approach for the grafting of Keggin POMs around the core-crosslinked PB-P2VP worm-like polymer templates (A 1 and 2). The produced POM-1 exhibits high dispersion, improved surface area and is thus expected to be useful in catalytic, electrochemical and biotechnology related applications. The general applicability of the method to other Keggin POMs and spherical polymer nanostructures were studied. Developed Keggin POMs-1 to 6 showed high dispersion of Keggin POM and surface areas. To the best of our knowledge, our approaches lead to Keggin POM nanocomposites with the highest surface areas reported todate. As-synthesized Keggin POM nanocomposites are amorphous. We have studied the removal of polymer template and crystallization of hybrid to corresponding metal oxides through step-wise calcinations under argon followed by air. We have presented another approach to the synthesis of high surface area and mesoporous keggin POM framework materials using amphiphilic PI-PDMAEMA block copolymers (A 3). The calcined mesoporous materials exhibit Keggin POM hexagonal pore structure with high keggin POM dispersion, improved surface area. These developed materials are expected to be useful in catalytic applications. A fundamental principle involved in this method is that an attractive interaction between the organic block copolymer and the keggin POM precursors is obtained via Coulombic interactions through in situ quaternization (protonation) of PDMAEMA part, which also ensure the formation of a homogeneous hybrid material without any macrophase separation. Further, step-wise calcinations under argon and air lead to evolution of mesoporous keggin POM material. To the best of our knowledge, this is the first hexagonally ordered mesoporous Keggin POM framework material. We have presented a low-temperature, non-hydrothermal synthesis route to rutile nanocrystals. Both rutile and anatase nanocrystals exhibit positive surface charges. In contrary to the above approaches where polymer templates are cationic and inorganic precursors are anionic, in this case, inorganic nanocrystals are cationic and polymer templates are anionic. In this approach, we have demonstrated that crystalline TiO2 nanocomposites with well-defined crystalline form could be directly synthesized at temperatures as low as 40 oC by mesostructuring the positively charged crystalline titania colloids over anionic spherical polyelectrolyte brush particles under aqueous conditions. Stepwise calcinations first under argon followed with a second calcination in air lead to the complete removal of polymer template without collapse and hollow porous spheres with crystalline framework are obtained. Porosity and surface areas increased dramatically after stepwise calcinations. Moreover, the porous rutile nanomaterials are photocatalytically active. We proved that our hypothesis to the synthesis of crystalline TiO2 nanocomposites with well-defined crystalline form and morphologie is feasible.</description>
      <author>Ram Sai Yelamanchili</author>
      <category>doctoralthesis</category>
      <guid>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/459</guid>
      <pubDate>Mon, 06 Apr 2009 08:57:13 +0200</pubDate>
    </item>
    <item>
      <title>Soft Compartmentalized Polymer Colloids: Janus Particles, Multicompartment Structures, Inorganic-Organic Hybrids and Applications</title>
      <link>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/436</link>
      <description>Compartmentalized polymer-based colloids with nanoscopic dimensions and different topologies were prepared based on various block copolymer architectures. The polymers were prepared via anionic polymerization or a controlled radical polymerization technique (RAFT). Self-assembly both in solution and in bulk were rigorously exploited to create the multicompartment architectures. Several new crosslinking strategies, in bulk and in solution, were thoroughly investigated to allow a controlled preservation and a high shape-persistence of the colloidal particles even when exposed to non-selective solvents. Cylindrical and disc-like Janus particles were investigated according to their self-assembly behavior into superstructures. The Janus discs undergo back-to-back stacking in organic solvent. In aqueous solution, a size-dependent aggregation was found. While the smaller Janus discs are unimolecularly dissolved with a significant polystyrene surface exposed to the water, the larger Janus sheets can shield the insoluble side by a large bending in an intramolecular fashion. Janus cylinders self-assemble on two hierarchical levels. Upon exposure to a selective solvent, they self-organize into fibers. The length of these fibers depends on the concentration and a critical aggregation concentration exists below which self-assembly is absent. Secondly, the Janus cylinders form fibrillar networks with tunable pore sizes when deposited from more concentrated solution. The surface-active properties of spherical Janus particle were exploited for the investigation of two possible applications of both academic and industrial relevance. In Pickering emulsion polymerization, extremely well-defined latexes with long-term stability could be prepared in a very facile fashion. A control of the particle size by changing the concentration of Janus particles could easily be achieved. Secondly, the nanostructuring of polymer blends was shown for a PS/PMMA model system. The system exhibits a control on two length scales. The first is the controlled decrease of the domains of the dispersed phase and the second is the controlled spacing between the particles at the interface. The particles are exclusively located at the interface and the nanostructuring can be obtained while matching macroscopic processing constraints, i.e. high-shear blending in a mini mixer. The self-assembly of bis-hydrophilic triblock terpolymers with two outer hydrophobic blocks was investigated for a variety of different hydrophilic end blocks. The overall architecture of the solution structures could be tailored by changing the hydrophobic-to-hydrophilic balance. Additionally, the interaction between the corona-forming blocks has an influence on the particle shapes as well. The micelles possess coronas with appealing and tunable properties, due to the presence of a hydrophobic core and hydrophilic biocompatible and stimuli-responsive segments. The self-assembly of miktoarm star terpolymers, bearing arms of polystyrene (PS), polybutadiene (PB) and poly(2-vinylpyridine) (P2VP), was analyzed both in solution as well as in the bulk state. In solution, the miktoarm star terpolymers form multicompartment micelles with a glassy (PS) and a soft compartment (PB), all rendered water-soluble by the P2VP corona. Strikingly, the soft PB compartments show hydrophobic bridges in aqueous medium which is of high interest as they can be used as a second motif for sensing, adhesion control or interaction with cellular membranes. The transfer of a hexagonally ordered cylindrical bulk phase via crosslinking of the PB domain of a bulk structure of a similar miktoarm star terpolymer allowed the preparation of novel multicompartment cylinders. The structures possess perfectly parallel aligned compartments. Two symmetric and opposing PS and P2VP compartments surround a central ribbon-like PB compartment. The P2VP compartments could be used to generate perfectly aligned bi-axial nanowires inside spatially separated compartments within close proximity. Due to the presence of an amphiphilic corona, the extent of the compartmentalization can be tuned from separated nanowires into one homogenous nanowire simply by exchanging the solvent. The complexity and high control of the structure of this multicompartment cylinder is unmatched and can most likely not be obtained by solution based self-assembly.</description>
      <author>Andreas Walther</author>
      <category>doctoralthesis</category>
      <guid>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/436</guid>
      <pubDate>Tue, 23 Dec 2008 10:03:42 +0100</pubDate>
    </item>
    <item>
      <title>Ausrichtung von Blockcopolymerfilmen im Elektrischen Feld: Eine In-Situ Rasterkraftmikroskopische Untersuchung</title>
      <link>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/379</link>
      <description>Im Rahmen dieser Arbeit wurde die Reorientierung sowohl von dünnen als auch dicken Diblockcopolymerfilmen mit lamellarer Mikrodomänenstruktur im realen Raum untersucht. Die Experimente erfolgten unter Tempern im Lösungsmitteldampf im planaren elektrischen Feld. Es wurden zwei Wege gezeigt, wie lamellare Mikrodomänen aufgestellt und durch ein elektrisches Feld in drei Dimensionen ausgerichtet werden können. In beiden Fällen wurden periodische und hochgeordnete Streifenstrukturen erhalten. Sowohl der Reorientierungsmechanismus der Mikrodomänen als auch der Einfluss des elektrischen Feldes auf die Defektbeweglichkeiten im dünnen Film, wurden mit einem modifizierten AFM, dem so genannten quasi in-situ AFM untersucht. Der Mechanismus der Reorientierung im dicken Film wurde durch eine kombinierte Studie aus AFM, GISAXS, REM und in-situ Ellipsometrie ermittelt. Weiterhin wurden der Verlauf der elektrischen Feldlinien und die Feldstärke für die verwendete Elektrodengeometrie auf der Basis der Finiten-Elemente-Methode simuliert. Ferner wurde der Einfluss des elektrischen Feldes auf den Grad der Ausrichtung für die Polymere SHM und SV untersucht. Hierfür wurden kombinatorische Experimente mit Elektroden in Gradientengeometrie durchgeführt.</description>
      <author>Violetta Olszowka</author>
      <category>doctoralthesis</category>
      <guid>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/379</guid>
      <pubDate>Tue, 15 Apr 2008 12:36:28 +0200</pubDate>
    </item>
    <item>
      <title>Orientation and Phase Behavior of Block Copolymers in External Electric Fields</title>
      <link>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/322</link>
      <description>The influence of external electric fields on the microdomain structure of block copolymers has been studied. The results range from an analysis of the mechanism and kinetics of the reorientation process, via the discussion of the driving force, to first investigations on the influence of an electric field on the phase behavior. The electric field induced effects on concentrated block copolymer solutions were investigated by in-situ synchrotron small-angle x-ray scattering. The first part concerns the analysis of the mechanism and kinetics of the alignment of lamellar forming diblock copolymer solutions as well as a quantitative study of the reorientation kinetics of various block copolymers in order to clarify the driving force of reorientation in a DC electric field. The second part of this thesis describes the influence of an electric field on the phase behavior of block copolymers. It is shown that a gyroid phase (G) as well as a hexagonally perforated lamella phase (HPL) exposed to an electric field undergo a phase transition to cylinders (C) and lamellae (L), respectively. Furthermore, an anisotropic deformation of the chain conformation in various lamellar and cylindrical block copolymer solutions via electric fields is demonstrated.</description>
      <author>Kristin Schmidt</author>
      <category>doctoralthesis</category>
      <guid>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/322</guid>
      <pubDate>Mon, 26 Nov 2007 08:11:11 +0100</pubDate>
    </item>
    <item>
      <title>New Double-Responsive Micelles of Block Copolymers Based on N,N-Diethylacrylamide: Synthesis, Kinetics, Micellization, and Application as Emulsion Stabilizers</title>
      <link>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/228</link>
      <description>Thermo- and pH-responsive block copolymers based on (meth)acrylic acid and N,N-diethylacrylamide were synthesized and their aqueous solution behavior was studied. Such bishydrophilic block copolymers represent an interesting class of stimuli-responsive water-soluble materials whose macroscopic properties can be triggered at the molecular level by tuning the temperature, the pH and the ionic strength of the solution. A new method was introduced for the synthesis of well-defined poly(N,N-diethylacrylamide) (PDEAAm) via living anionic polymerization using ethyl alpha-lithioisobutyrate (EiBLi) in the presence of triethylaluminium (Et3Al) as Lewis acid in tetrahydrofuran (THF) at -78 °C. Kinetic investigations were performed using in-situ Fourier-transform Near-Infrared (FT-NIR) fiber-optic spectroscopy. This is the first mechanistic study of the anionic polymerization of a dialkylacrylamide. The polymerization follows first order kinetics with respect to the effective concentration of active chains, [P*]0, but shows complex kinetics with respect to the actual monomer and initial aluminum concentrations. Upon addition of Et3Al, the polymerization rate constant, kp decreases, which is explained by the formation of an amidoenolate chain end/Et3Al complex of lower reactivity. It involves two equilibria: between noncoordinated and Et3Al-coordinated chain ends (deactivation of chain ends) as well as between free and Et3Al-activated monomer (activated monomer mechanism). These two effects are in a delicate balance that depends on the ratio of the concentrations of Et3Al, monomer, and chain ends. Thus, the polymerization rate of this system is governed simultaneously by the complex interplay between the activation of monomer (dependent on monomer and Et3Al concentrations) and the deactivation of chain ends (dependent on the ratio of concentrations of Et3Al to initiator). Polymers with narrow molecular weight distribution are obtained, indicating that the rate of interconversion between the different chain end species is greater than the polymerization rate. In contrast, such well-defined polymers are not found in the absence of Et3Al. PDEAAm polymers, synthesized using organolithium initiator in the presence of Et3Al, are rich in heterotactic (mr) triads and exhibit Lower Critical Solution Temperatures (LCST) in water with a cloud point at Tc = ca. 31 °C. By extending this synthetic concept and using poly(tert-butyl acrylate)-Li, and poly(tert-butyl methacrylate)-Li as macroinitiators, well-defined poly(tert-butyl acrylate)-block-PDEAAm, and poly(tert-butyl methacrylate)-block-PDEAAm block copolymers were obtained. Although the blocking efficiencies remained below 70 % a separation of block and homopolymers was easily possible. The narrowly distributed (AA)45-b-(DEAAm)360 block copolymer obtained after hydrolysis of the protecting tert-butyl groups exhibits interesting ‘schizophrenic’ micellization behavior in response to temperature, to pH, and to ionic strength of the aqueous media. Due to its asymmetric composition, two opposite micellar structures are expected. Indeed, the existence of different micellar aggregates, i.e., ‘crew-cut’ micelles with a PDEAAm core and inverse star-like micelles with PAA core, was proven by several analytical techniques, like Small-Angle Neutron Scattering (SANS), Dynamic and Static Light Scattering (DLS, SLS) and Cryo Transmission Electron Microscopy (cryo-TEM). Furthermore, all the transitions were found to be reversible. Finally, the synthesized bishydrophilic block copolymers were used for batch emulsion polymerizations of styrene, methyl methacrylate and n-butyl acrylate. In all cases, latexes with remarkable long-term stabilities were obtained, which is a very interesting feature from the colloidal point of view. The stabilization efficiency was found to be essentially adjustable by the pH due to the loss of the PDEAAm segment inside the latex particle. A detailed analysis of the particle size and particle size distribution was carried out using a variety of methods, including DLS, TEM and Asymmetric Flow Field-Flow Fractionation (AF-FFF).</description>
      <author>Xavier André</author>
      <category>doctoralthesis</category>
      <guid>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/228</guid>
      <pubDate>Mon, 23 Oct 2006 15:27:39 +0200</pubDate>
    </item>
    <item>
      <title>Phasenverhalten von Blockcopolymeren und deren Wechselwirkung mit normalen Kohlenwasserstoff-Tensiden</title>
      <link>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/226</link>
      <description>Die Mizellbildung dreier Blockcopolymer-Systemen in Wasser und deren Wechselwirkungen mit normalen Kohlenwasserstoff-Tensiden wurden durch Messungen der Oberflächenspannung, Elektronenmikroskopie, Lichtstreuung und Kleinwinkelneutronenstreuung untersucht. Für das System PEO18-PEB64-PEO18 sind die wässrigen Lösungen der Blockcopolymere trüb und metastabil und trennen sich innerhalb von ein paar Wochen in zwei Phasen. Das Blockcopolymer ist oberflächenaktiv und erniedrigt die Oberflächenspannung von Wasser. Die elektronenmikroskopischen Aufnahmen einer 1% igen Lösung des Blockcopolymers in Wasser weisen auf eine Polymorphie der Aggregate und einen fehlenden Gleichgewichtszustand hin. Unilamellare und multilamellare Vesikel und fadenförmige Mizellen sind nebeneinander auf den Aufnahmen erkennbar. Mit der Zugabe eines anionischen Tensids, SDS, ändern sich die optischen Eigenschaften sowie die Nullviskosität der Lösung und die Morphologie der Aggregate. Unterhalb der cmc des Blockcopolymers wurde keine Wechselwirkung mit Tensiden erkannt. Oberhalb der cmc lagern sich die Tensidmoleküle an die Aggregate der Blockcopolymere an. Mit zunehmender Tensidkonzentration verschwinden die größeren Aggregate und Vesikel und die Trübung der Lösung nimmt ab. Die dominante Morphologie ändert sich mit der zunehmenden Tensid­konzentration von Vesikeln zu fadenförmigen Mizellen, zu großen Mischaggregaten und zu kleinen SDS-Mizellen in welche einzelne Polymerketten gelöst sind. Diese Mischmizellen befinden sich im Gleichgewicht mit reinen SDS-Mizellen. Bei Sättigung der Blockcopolymere mit Tensid bleibt die Oberflächenspannung konstant und bei einem Wert wie dem von reinem Tensid. Die Lösungen sind dann klar und haben eine niedrige Viskosität. Die Sättigungs-Tensidkonzentration nimmt linear mit der Polymerkonzentration zu. Für das System PnBA100-PAA150 sind die wässrigen Lösungen der Blockcopolymere trüb und trennen sich in zwei Phasen. Mit der Neutralisation der Polysäure-Gruppe nimmt die Trübung ab. Für dieses System wurden zwei interessante Eigenschaften beobachtet: 1- Keine Oberflächenaktivität 2-Abhängigkeit der Viskosität von dem alpha-Wert Auf den elektronenmikroskopischen Aufnahmen sind die Änderungen der Morphologie und der Teilchenanordnung mit dem alpha-Wert erkennbar. Bei alpha=0 koexistieren unterschiedliche Morphologien wie kugelförmige Mizellen und Stäbchen, deren Größe und Form darauf hinweisen, daß das System sich nicht in einem thermodynamischen Zustand befindet. Bei alpha&gt;0.1 sind die Teilchen ausschließlich kugelförmig. Die Polymer-Moleküle aggregieren in kugelförmige Aggregate mit einer Kern-Schale Struktur. Mit zunehmendem alpha-Wert erkennt man eine hohe Ordnung der Aggregate und einen ziemlich gleichmässigen Abstand zwischen den Teilchen. Die Polyelektrolyt-Kette streckt sich mit zunehmendem alpha-Wert, bei alpha=0,5 hat sie die höchste Länge erreicht und die Mizellen besitzen die höchste Ordnung. Aus der SANS-Messung läßt sich zwischen den Teilchen ein Abstand von ca. 104 nm und ein Durchmesser von ca. 99 nm für die Teilchen berechnen. Dies entspricht einer dichten Packung der Aggregate, welche sich in der hohen Viskosität der Lösung wiederspiegelt. Sowohl kationische, anionische und zwitterionische Tenside lagern sich an das Blockcopolymer an. Das kationische Tensid bindet an die negativ geladenen Säuregruppen und bildet einen nicht löslichen Komplex, welcher sich bei niedrigeren Tensidkonzentrationen um den Kern der Blockcopolymere legt. Die Mizelle hat dann einen schalenförmigen Aufbau mit dem Butylacrylat-Block im Zentrum, der mit einer Schale von dem unlöslichen Komplex umgeben ist. Der Rest der Polyelektrolyt-Kette bildet die Corona.) Bei höheren Tensidkonzentrationen fällt der Komplex aus der Lösung. Das Tensid bindet sich kooperativ an die Polysäure und ist nicht gleichmäßig verteilt. Mit dem anionischen Tensid SDS dominieren hydrophobe Wechselwirkungen. Das Tensid dringt in den Kern der Mizelle hinein. Nach Absättigung der vorhandenen Grenzfläche und Auflösung der Blockcopolymermizellen aggregieren die Tensid-Moleküle in normale Mizellen. Mit dem zwitterionischen Tensid C14DMAO wird die Wechselwirkung bei niedrigen alpha-Werten durch Protonenübertragung und elektrostatische Kräfte und bei höheren alpha-Werten durch hydrophobe Kräfte beherrscht. Das Blockcopolymer PMMA60-PAA90 aggregiert in Wasser ohne die Oberflächenspannung zu erniedrigen. Die wässrigen Lösungen von PMMA60-PAA90 schäumen obwohl das Blockcopolymer die Oberflächenspannung des Wassers kaum ändert. Die Viskosität von 1 %igen Blockcopolymer-Lösungen ändern sich nur wenig mit dem alpha-Wert und bleiben für den ganzen Neutralisationsbereich niedrig. Auf der Kryo-TEM Aufnahme der Mizellen ist eine starke Ordnung erkennbar, die aber keine hohe Viskosität verursacht. Der Unterschied kann ebenfalls an der Länge der Polyelektrolyt-Ketten liegen.</description>
      <author>Elham Eghbali</author>
      <category>doctoralthesis</category>
      <guid>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/226</guid>
      <pubDate>Thu, 28 Sep 2006 14:38:21 +0200</pubDate>
    </item>
    <item>
      <title>Holographische Datenspeicherung in nanostrukturierten azobenzolhaltigen Polymeren</title>
      <link>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/223</link>
      <description>In der vorliegenden Arbeit werden verschiedene Diblock-Copolymere mit azobenzolhaltigen Seitenketten auf ihr Potential für Anwendungen als wiederbeschreibbares Medium für die holographische Datenspeicherung untersucht. Die Seitenketten dieser Polymere können durch Bestrahlung mit Licht angeregt und umorientiert werden. Infolge der Anisotropie der Seitenketten führt die Umorientierung in den beleuchteten Bereichen des Materials zu Doppelbrechung und damit zu einer räumlichen Brechungsindexmodulation für polarisiertes Licht. Bei Blockcopolymeren tritt Mikrophasenseparation auf. Diese ermöglicht im räumlichen Mittel eine Verdünnung der Azobenzolfarbstoffe bei gleichbleibend hoher lokaler Konzentration in den eingeschlossenen Minoritätsphasen. Die makroskopische Verdünnung ist zur Reduzierung des Absorptionskoeffizienten notwendig, damit das zum Schreiben verwendete Licht Proben mit einer Dicke im Bereich von 1 mm durchdringen kann. Eine hohe lokale Konzentration ist andererseits für die Stabilisierung der eingeschriebenen Information notwendig. Es ist bekannt, dass in azobenzolhaltigen Homopolymeren und statistischen Copolymeren eine stabile Orientierung bei gleichzeitiger schneller lichtinduzierter Umlagerung durch flüssigkristalline Phasen erreicht werden kann. Um festzustellen, ob die kooperative Umorientierung der Seitenketten und ihre gegenseitige Stabilisierung auch in den Minoritätsphasen von Blockcopolymeren auftreten, wurden solche Blockcopolymere untersucht, die in den Seitenketten des photoadressierbaren Blocks methoxysubstituierte Azobenzolgruppen und nichtabsorbierende Dreikernmesogene in unterschiedlichem Verhältnis enthielten. Mit zunehmendem Anteil der mesogenen Seitenketten stieg trotz des gleichzeitig abnehmenden Anteils der Farbstoffgruppen die erreichbare Brechungsindexmodulation eingeschriebener holographischer Gitter an. Damit konnte gezeigt werden, dass sich auch in Blockcopolymeren die mesogenen Seitenketten gemeinsam mit den Farbstoffgruppen umorientieren lassen. Mit steigendem Mesogenanteil stieg die Stabilität der eingeschriebenen Gitter ebenfalls an. Ab einem Anteil von 35 mol-% mesogenen Seitenketten im photoadressierbaren Block war diese so hoch, dass innerhalb eines Zeitraumes von zwei Jahren keine Relaxation der eingeschriebenen Orientierung beobachtet wurde. Nachdem an Gittern, deren Dicke wesentlich größer als die Gitterperiode ist, nur dann Beugung auftritt, wenn die Bragg-Bedingung erfüllt ist, können mehrere Hologramme an der selben Stelle des Mediums eingeschrieben und unabhängig voneinander wieder gelesen werden. Dadurch erhält man zu den üblichen zwei Dimensionen eines flächigen optischen Datenspeichers den Winkel als dritten Freiheitsgrad. An 1,1 mm dicken Spritzgussproben von Mischungen aus einem Blockcopolymer und Polystyrol wurden Experimente zum Winkelmultiplexing einfacher holographischer Gitter durchgeführt. Es gelang, sowohl überlagerte Intensitätsgitter als auch überlagerte Polarisationsgitter einzuschreiben. In azobenzolhaltigen Polymeren wächst die Brechungsindexmodulation holographischer Gitter extrem nichtlinear mit der Belichtungszeit an. Dennoch konnten in der Praxis Intensitätsgitter mit gleicher Belichtungszeit eingeschrieben werden, die am Ende der Einschreibvorgänge nahezu identische Beugungseffizienzen aufwiesen. Bis zu 200 holographische Intensitätsgitter konnten an der selben Stelle des Materials erzeugt werden. In Mischungen von Polystyrol mit Blockcopolymeren, die nichtabsorbierende mesogene Seitenketten oder mesogene Farbstoffgruppen enthielten, wurde sowohl bei einzelnen Hologrammen als auch im Fall mehrerer überlagerter Gitter eine sehr gute Stabilität beobachtet. Als nächsten Schritt hin zur Speicherung realer Daten wurden ausgedehnte Hologramme von zweidimensionalen Testbildern gespeichert. Mehrere dieser Hologramme konnten ebenfalls erfolgreich an der selben Stelle unter unterschiedlichen Winkeln geschrieben und rekonstruiert werden. Die Umorientierung von Azobenzolseitenketten ist reversibel. Die Materialien sind daher wiederbeschreibbar. Es konnte ein geeignetes Verfahren entwickelt werden, das es ermöglicht, Hologramme auf rein optischem Wege nahezu vollständig zu löschen und das Medium mehrere tausend Male wiederzubeschreiben. Zum Löschen wurde jeweils ein zweites holographisches Gitter verwendet, das zu dem ursprünglich eingeschriebenen um 180° phasenverschoben war. Dadurch wurde die Information bereits nahezu vollständig gelöscht. Anschließend wurde mit einem einzelnen Laserstrahl, dessen Polarisation um 90° gedreht war, nachbelichtet, um die Farbstoffgruppen wieder in die Polarisationsrichtung der Schreibstrahlen zu orientieren. Durch diese beiden Schritte konnte die Beugungseffizienz der Hologramme um mehr als zwei Größenordnungen abgeschwächt werden und es wurde nach mehr als 1000 Schreib-Lösch-Zyklen wurde weder eine Abnahme der Beugungseffizienz eingeschriebener Gitter noch eine Verschlechterung des Löschverhaltens beobachtet.</description>
      <author>Michael Häckel</author>
      <category>doctoralthesis</category>
      <guid>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/223</guid>
      <pubDate>Wed, 13 Sep 2006 15:31:45 +0200</pubDate>
    </item>
    <item>
      <title>Donor-Acceptor Block Copolymers for Charge Separation at Nanostructured Interfaces</title>
      <link>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/218</link>
      <description>The motivation for this thesis was the synthesis and characterization of novel materials exhibiting nanostructured interfaces for electro-optical studies. Therefore a series of functionalized block copolymers, acceptor labeled polymers and low molecular weight model compounds were synthesized in which hole transport (donor), electron transport (acceptor) and light absorbing functionalities were incorporated. My approach was to use functionalized block copolymers. Block copolymers exhibit microphase separation with domain sizes on a nanometer scale by the interplay between immiscibility and molecular connectivity. I used a controlled radical polymerization technique, the nitroxide mediated radical polymerization (NMRP), to get block copolymers with one block consisting of an electron transport material and the other one of a hole transport material. Triphenylamine was used as hole conductor in combination with perylene bisimide as dye and electron conductor. First, a soluble perylene bisimide monomer had to be synthesized. This was achieved by an unsymmetrical synthesis starting from the perylene-3,4:9,10-tetracarboxylic bisanhydride. For the solubility a swallow-tail substituent was introduced and the other imide group was functionalized with an acrylate to get the monomer. Starting the polymerization with 4-vinyltriphenylamine, different PvTPA 23 macroinitiators were synthesized. A series of block copolymers 24C-24F were prepared using the same PvTPA macroinitiator 23C, thus only varying the perylene bisimide block. Furthermore, a series of block copolymers 24A-24C were synthesized using different PvTPA macroinitiators 23A-23C. Thus block copolymers with different molecular weights, but similar ratios of the blocks could be prepared. The controlled nature of NMRP allowed the architecture of these block copolymers with low polydispersities and controlled molecular weight. The block copolymers exhibited microphase separation, revealing elongated nanowire like structures for those with high perylene bisimide content. Most of these block copolymers exhibit a constant width of 13 nm for the nanowire like structure of the perylene bisimides. This was the first examples of microphase separation of block copolymers carrying electron transport and hole transport blocks. The electrochemical properties of the block copolymers were studied using cyclic voltammetry. The LUMO of the perylene bisimide block is -3.65 eV and the HOMO of the triphenylamine block is -5.23 eV. Therefore the maximum built-in potential and theoretically achievable photovoltage Voc is 1.58V. The efficiency of the block copolymer solar cells is one order of magnitude higher than that of the comparable blend device. It could also be shown that the block copolymer in the solar cell is microphase separated, revealing domain sizes from 10 to 50 nm, whereas the blend on the other hand is macrophase separated. This is the first report of charge separation at a nanostructured bulk interface in a block copolymer consisting of an electron transport and a hole transport material exhibiting microphase separation. These results are thus proof-of-principle for the nanostructured bulk heterojunction solar cells using block copolymers. Furthermore, fluorescent acceptor labeled polymers were synthesized using a series of monomers in order to obtain a single dye unit attached to various polymer chains. These polymers were prepared by nitroxide mediated radical polymerization with an alkoxyamine initiator that is covalently bound to a perylene bisimide moiety. It could be shown with MALDI-TOF mass spectrometry that a single perylene bisimide unit is incorporated in each polymer chain. By using 4-vinyltriphenylamine monomers bifunctional polymers (8) containing electron donating moieties and a single electron acceptor unit were obtained. The polymerization of standard monomers such as styrene and acrylates, gave polymers (9-12) with only a single electron acceptor unit. Also novel electron acceptors consisting of perylene bisimide and fullerene moieties 15 and 17 were prepared and characterized. Although these dyads do not exhibit any ground state electronic coupling between the individual moieties, the emissive properties of the perylene bisimide units are strongly influenced by the covalently bound fullerene. The fluorescence of the perylene bisimide moiety is quenched by 99 % due to energy and electron transfer between the fullerene and the perylene bisimide. Beside the use as a model system these dyads are also capable of being used in organic solar cells. PCBM, the fullerene derivative which is usually used in polymer solar cells, is barely absorbing light and therefore perylene bisimide functionalized fullerenes may be an alternative as they strongly absorb light in the visible region.</description>
      <author>Stefan Lindner</author>
      <category>doctoralthesis</category>
      <guid>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/218</guid>
      <pubDate>Mon, 14 Aug 2006 15:29:21 +0200</pubDate>
    </item>
    <item>
      <title>Shear-induced alignment in block copolymer solutions</title>
      <link>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/200</link>
      <description>The alignment of the ordered microdomains of block copolymers in solution has been accomplished by using mechanical shear fields. Two pathways to monitore the achievement of aligned structures have been used: rheo-optical and in situ rheo-SAXS methods. The AC diblock copolymer and ABC triblock terpolymer with high molecular weights and different morphologies were synthesized via anionic polymerization and the alignment has been monitored from the solutions of neat AC diblock, ABC triblock and their blend in a non-volatile solvent. Before proceeding to the alignment protocols the thermodynamics of the diblock copolymer solutions has been studied by rheological means. The slightly asymmetric diblock copolymer polystyrene-b-poly(t-butyl methacrylate) (ST) as solutions at different concentrations was investigated by scanning of moduli over a range of temperatures and the morphological transitions were detected. This led us to conclude that dioctyl phthalate is a selective solvent for this diblock copolymer (ST) and a transition from the initially lamellar toward a cylindrical or spherical morphology takes place before order-disorder transition. A route to check the induced asymmetry due to the solvent selectivity was accomplished by applying the Leibler dilution approximation theory. While for the less asymmetric diblock copolymer ST(72K) the dilution approximation theory could be approached, for the higher asymmetric ST(117K) a failure of the theory has been encountered. For the system ST(72K) where the theory was still valid, as a result an expression for the interaction parameter has been developed. The alignment kinetics were performed first by making use of the rheooptical method and the monitored retardation was further used for calculation of birefringence. A perfectly symmetric diblock ST with high molecular weight (100K) as solution in dioctyl phthalate was used for the alignment protocols. Previous investigation of such system did not show any order-order transition, thus for this particular symmetric diblock the same lamellar morphology was preserved in the swollen state. Over a wide range of frequencies and strain amplitudes the monitored birefringence was always positive meaning a perpendicular alignment with the normals of lamellae along the vorticity axis and perpendicular on the plane formed between flow direction and gradient velocity axes. This prefered alignment has been explained due to the low viscoelastic contrast between the polystyrene and poly(t-butyl methacrylate) blocks which did not allow the sliding toward a parallel alignment found for systems with a large viscoelastic contrast. Thus, choosing an appropriate chemical sequence of blocks a selective type of macroscopic alignment by LAOS can be achieved. The introduction of the third elastomeric block between the thermoplastic outer blocks (S and T), namely SBT triblock terpolymer, lead to significant changes in terms of alignment in the sense of tunable intermediate (perpendicular and transverse) aligned states which finally led to the same final parallel orientation in the diluted state. The in situ rheo-SAXS method applied to the same system elucidated the intermediate mechanism leading to a final parallel aligned state such as a coexistence of parallel and perpendicular states which gave rise to a transverse alignment in rheooptical method. As a finally aligned state resulting from in situ rheo-SAXS in oscillatory mode the perpendicular one was found within a short time scale (1h), while the rheooptical method revealed a perpendicular state at short time scale (1h) and parallel state at long time scale (10h). Finally, the investigation of the lamellar non-centrosymmetric blend SBT:ST=60:40 allowed preferential parallel alignment above a critical strain amplitude instead below the critical strain amplitude only perpendicular alignment is achieved. While the rheooptical method applied to a bcc morphology of a solution of SBM triblock terpolymer in DOP did not give evidence for an induced morphological transition, in situ rheo-SAXS was a powerful tool to illustrate such a transition. Moreover, we have shown that more complicated morphologies like knitting pattern of SEBM (as cast film from chloroform) which reveals a bcc morphology as a solution in DOP could be investigated and macroscopically aligned via in situ rheo-SAXS while the rheooptical method could not be used due to the non transparent system. The induced columnar structure could be monitored in 2D SAXS patterns which have never been reported before. In summary, it was demonstrated that mechanical field alignment of block copolymer domains in solution allowed to generate highly anisotropic structures even for block copolymers with high molecular weights under ambient conditions and for a large variety of morphologies.</description>
      <author>Gabi Cantea</author>
      <category>doctoralthesis</category>
      <guid>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/200</guid>
      <pubDate>Mon, 24 Apr 2006 09:29:25 +0200</pubDate>
    </item>
    <item>
      <title>Structural Analysis of Cylindrical Particles by Small Angle X-ray Scattering</title>
      <link>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/139</link>
      <description>The objective of this work is to analyze nano-scaled cylindrical particles by small angle X-ray scattering (SAXS). Three systems with cylinder-shaped particles: (1) Laponite particles in aqueous solutions, (2) Poly(carbon suboxide) particles in binary water/DMF solutions, and (3) Suprastructural aggregates of coil-ring-coil block copolymers in cyclohexane, have been studied by SAXS performing either a Kratky-Compact-Camera in our laboratory or ID2 beamline of the European Synchrotron Radiation Facility (ESRF) in Grenoble. The synthetic clay particles, Laponite RD, have been chosen as ideal disc-shaped model particles. In combination of SAXS with static light scattering, the scattering intensities of a concentration serial (volume fraction from 0.0002 to 0.0016) were measured in almost three orders of magnitude of the scattering vector q. Through extrapolation of concentration the scattering intensity at vanishing concentration, i.e. the form factor P(q) of particles was achieved. It shows q-2 decay at intermediate q range, which indicates that the shape of single Laponite particle in aqueous solution is platelet. The plateau of the form factor at low q range implies that there is no aggregate or cluster structure, and the Laponite particles are dispersed completely under the investigated conditions. More detailed structural information was then obtained by fitting of P(q) with disc model. The radii of the discs exhibit a large polydispersity. A radius of 10.5 nm with Schulz-Zimm distribution of Rw/Rn = 1.5 (where Rw and Rn denote weight and number average radius, respectively) was found to fit the form factor perfectly. The thickness of one single platelet was determined to be 0.9 nm. The weight averaged molecular weight and radius of gyration were determined to be 930 kg/mol and 13.4 nm, respectively. The inter-particle interactions of Laponite particles were investigated by the structure factor S(q), from which the effective diameter of interparticle interactions deff was determined for the first time. The strong electrostatic Coulomb repulsion between charged Laponite particles was attributed to the much higher value of deff (= 46 nm), in comparison to 2Rg (= 27 nm). The recently developed multicomponent interaction site model was performed by Harnau to predict these experimental structure factors. An effective potential of interaction, which pays attention to a screened Coulomb interaction as well as an attractive interaction, leads to the best description of the model to the experimental data. By means of SAXS, the size of synthetic polymer carbon suboxide ((C3O2)n) dissolved in binary water/DMF solutions was determined for the first time with radius of gyration Rg = 1.7 nm and molecular weight Mw = 2760 g/mol, which corresponds to a polymerization’s degree of about 40. This value is much larger than literature one (5-10). The form factor of polymer carbon suboxide can be described by a semiflexible chain model. The radius of gyration in cross-section RC and molecular weight per unit length ML were obtained to be 0.3 nm and 350 g/(mol.nm), respectively, which can confirm the fact that the chemical structure of poly(carbon suboxide) is repeated pyronic ring, as suggested in most literatures. Thus the structure and size of polymer carbon suboxide were characterized completely by SAXS. Finally, SAXS was employed to analyze a suprastructural aggregation system derived by self-assembly of coil-ring-coil block copolymers. This is a newly synthesized subclass of rod-coil block copolymers composed of a nanometer-sized shape-persistent macrocycle and two covalently attached polystyrene (PS) coils. The solubility of the rigid ring is largely enhanced due to the attachment of the flexible side groups. With suitable length of the flexible side groups (Mw (PS) = 2500 g/mol) the block copolymers can form colloidal-sized aggregates in selected solvent cyclohexane, which were concluded to be of cylindrical shape with the rigid rings packing densely in a tubular way and the flexible side groups arranging outside of the ring. Such aggregated cylinder brushes can be further confirmed to exist as a mixture of cylinder bundles by analyzing the local structural parameter ML (= 25730 g/(mol.nm), molecular weight per nm length of cylindrical objects). In comparison of this value with M0 (= 6500 g/mol, molecular weight of single coil-ring-coil block copolymer) and d (= 0.6 nm, distance of adjacent densely packed rings), the number fraction of coexisted single cylinder, bi- and tri-cylinder bundles was resulted to be 1:1:2. Through fitting by using approximated circular cylinder model the radius of single cylinders was determined to be 2.6 nm (polydispersity 20 percent) with a hollow inside of radius of 1.2 nm.</description>
      <author>Li Li</author>
      <category>doctoralthesis</category>
      <guid>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/139</guid>
      <pubDate>Thu, 16 Jun 2005 14:49:32 +0200</pubDate>
    </item>
    <item>
      <title>New block copolymers of Isobutylene by combination of cationic and anionic polymerizations</title>
      <link>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/121</link>
      <description>The studies presented in this thesis deal with the new block copolymers of isobutylene by combination of cationic and anionic polymerizations, which are new materials with numerous promising potential applications. A new method for the synthesis of tailored polyisobutylene(PIB)-based block copolymer by combination of controlled / living cationic and anionic polymerizations has been developed. In addition and parallel to these subjects, new synthetic routes for preparation of telechelic PIBs and conductive polymers have been investigated. The PIB precursors used for subsequent anionic polymerization and other processes were prepared by controlled / living cationic polymerization of isobutylene followed by quenching with thiophene under selected conditions. Quantitative functionalization of living PIB with thiophene (T) has been achieved. The process is complicated by coupling between living PIB and PIB-T formed by in situ deprotonation. By lithiation of PIB-T a new, convenient method has been demonstrated for the synthesis of PIB-based block copolymers, involving anionic initiation of tert-butyl methacrylate. A major improvement is that for an industrial process, lithiation by n-BuLi is much more convenient than metalation by Na/K alloy, which had to be used in former processes. Block copolymers with narrow and unimodal molecular weight distribution (MWD) were synthesized under well-controlled conditions. The lithiated thiophene-capped PIB was also used to prepare four-armed star PIB via chlorosilane coupling. Using the same method, new amphiphilic block copolymers, namely PIB-b-poly(N,N-dimethylacrylamide) and PIB-b-poly(ethylene oxide) were synthesized. The anionic polymerization of N,N-dimethylacrylamide (DMAAm) was carried out with a binary initiator system prepared from thienyllithium and the Lewis acids triethylaluminium (Et3Al), diethylzinc (Et2Zn) or triethylborane (Et3B) in THF. Polymerizations proceeded in a homogeneous manner and gave polymers having controlled molecular weights. However, in presence of alkoxides the polymerization results in polymers insoluble in THF, even using Et3Al. Finally, lithiated PIB-T, in conjunction with Lewis acids, was used to initiate the living anionic polymerization of DMAAm, resulting in the new amphiphilic block copolymer PIB-b-PDMAAm. The anionic polymerization of ethylene oxide (EO) was carried out with a binary initiator system prepared from thienyllithium and the polyiminophosphazene base tBu-P4 in THF. Lithilated PIB-T- in conjunction with tBu-P4 was used to initiate the living anionic polymerization of ethylene oxide. In a second method, PIB-b-PEO was synthesized using hydroxyl end-capped PIB as macroinitiator in conjunction with tBu-P4. The aggregation behavior in dilute aqueous solutions of a PIB-b-PEO copolymer, produced from the combination of cationic and anionic polymerizations, was investigated by dynamic light scattering in aqueous solution. The monoaddition of ethylene oxide to lithiated PIB-T is demonstrated as a new pathway for the synthesis of hydroxy-functional PIB (PIB-OH). This is a useful alternative to the tedious procedures used in the literature so far. PIB-OH was successfully used as a macroinitiator for the ring-opening polymerizations of L-lactide and epsilon-caprolactone catalyzed by stannous octoate. Combination of chromatographic methods and MALDI-TOF ass spectrometry gave information about the side reactions during polymerization. Quantitative functionalization of living PIB with 2-bromothiophene has been achieved. Using various coupling methods, this polymer was convertet to a macromonomer with a pendant thiophene group, which is accessible in the 1- and 5-position. Oxidative copolymerization with thiophene led to graft copolymers consisting of polythiophene-graft-PIB.</description>
      <author>Nemesio Martínez-Castro</author>
      <category>doctoralthesis</category>
      <guid>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/121</guid>
      <pubDate>Wed, 09 Mar 2005 10:20:14 +0100</pubDate>
    </item>
    <item>
      <title>Nanostructure formation in thin polymer films</title>
      <link>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/104</link>
      <description>In the first part of this thesis an improved process is presented to prepare laterally structured substrates via hierarchical self organization. A miscut silicon surface annealed at 1400 K under ultra high vacuum conditions is used. The resulting facets are stable against oxidation and form a topographic pattern which can be further modified to a chemical pattern via evaporation of gold on every other facet. By controlling the time of annealing, we create structures with a reproducible mean width ranging from 40 to 400 nm. Despite the rather complex ultra high vacuum treatment and an additional evaporation step, we are able to produce substrates in a relatively short time (36 h). These substrates show a nanometer sized structure over an area of 0.5 cm². The automation of the cleaning process and a controlled heating during the annealing increases the yield of high-quality, stepped substrates. These structures allowed us to study the behavior of ultra-thin polystyrene films on topographically structured substrates. The film thickness of some nanometers is comparable to the radius of gyration of the polymers. The substrate corrugation causes a regular variation of the film thickness. We start with a homogeneous film, which is annealed above the glass transition temperature. During annealing the films are stable or form long polymer nanochannels, which lie in the grooves of the substrate structure. The balance of the radius of gyration and the film thickness controls the stability of the polymer film, while the corrugation only triggers the dewetting. The same behavior is found for films on flat substrates. Here small contaminations nucleate the formation of holes. Evaporation of gold stripes and their modification with self assembled monolayers leads to chemical patterned substrates. This expands the possibilities to manipulate the substrate wettability on the nanometer scale. The second part of the thesis describes the formation of ordered structures in block copolymer films. ABC triblock copolymers show a large variety of morphologies in thin films. We have shown that surface reconstructions play an important role in the structure formation process of these structures. In very thin films, where the film thickness is smaller than the long period of the polymer's micro domains, confinement effects overlap with the surface effects. The component with the lowest surface energy is accumulated at the free surface. It needs a subtle balance between the different surface energies (external fields) and the interaction of the three polymer blocks (internal fields) to create a surface reconstruction. This was shown by variation of the chemistry of the end block and by changing the sequence of blocks in the experiment. To analyze the surface reconstruction we used selective staining along with scanning electron microscopy, selective etching in oxygen plasma in combination with scanning probe microscopy, as well as quantitative TappingMode atomic force microscopy. Surface reconstructions of block copolymers show remarkable similarities with reconstructions of single crystal surfaces. In both cases the driving force for a rearrangement is the decrease in surface free energy of the ideal surface. A second analogy between the lamella forming SBM triblock copolymer and Si(100) is the fact that two non-equivalent layers of matter aligned parallel to the free surface lead to two different terminations at the surface. This shows that the phenomenon of surface reconstructions is not limited to classic crystals. The results of this thesis give new insights in the behavior of polymers at surfaces and in thin films. This gives the opportunity to create or manipulate nanometer sized structures accurately via self assembly, external stimuli, or a combination of both.</description>
      <author>Nicolaus Rehse</author>
      <category>doctoralthesis</category>
      <guid>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/104</guid>
      <pubDate>Wed, 20 Oct 2004 11:48:48 +0200</pubDate>
    </item>
    <item>
      <title>Instabilities in layered liquids induced by external fields</title>
      <link>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/60</link>
      <description>In this thesis, we have shown that the inclusion of a nematic degree of freedom in the macroscopic hydrodynamic description of smectic-A-like liquids leads to a number of interesting results. While the director and the layer normal are coupled such that they are parallel in equilibrium, in non-equilibrium situations, the director needs not be parallel to the smectic layer normal. This is in contrast to standard smectic-A hydrodynamics. Using irreversible thermodynamics and symmetry arguments, we derived a complete set of macroscopic hydrodynamic equations for the director variables, the layer displacement, the velocity field, and the moduli of the nematic and smectic order parameters. Recent experiments find that the parallel orientation of smectic-A- like liquids is destabilized by an applied shear. After destabilization, two typical scenarios are observed in a steady state situation: i) The layers are oriented perpendicular to the vorticity direction of the flow, i.e., they lie in the plane spanned by the velocity and the gradient direction (`perpendicular' orientation). ii) Closed multi-lamellar vesicles (`onions') form. A number of experiments indicate that the onset of this reorientation is controlled by the applied shear rate. In contrast to standard smectic-A hydrodynamics where shear in the parallel orientation has no effect on the layers, this destabilizing effect comes out naturally from our extended smectic-A hydrodynamics. The argumentation goes along the following lines. The shear field exerts a torque on the director that must be balanced by the coupling to the layer normal. In the limit of small angles, balancing these torques leads, in the steady state, to a shear-induced director tilt proportional to the shear rate. The preferred thickness of a smectic layer is directly connected to the projection of the averaged molecular axes on the layer normal, or, in terms of our model, the thickness is proportional to the projection of the director on the layer normal. If the director is tilted, this projection is shorter. This decrease of the projection is equivalent to an effective dilation, because the actual layer thickness is larger than the preferred layer thickness. Similar to the case of low molecular weight smectic-A liquid crystals under a dilative strain, this effective dilation leads to an undulation instability. To investigate the stability of the parallel alignment, we performed a linear and weakly non-linear analysis of the governing equations. The initial state is the above described spatially homogeneous director tilt with the smectic layers in the parallel orientation. The linear stability analysis showed an undulation instability which sets in above a critical tilt angle (or equivalently, a critical shear rate). This critical tilt angle turned out to depend strongly on the material parameters. For a typical low molecular weight thermotropic liquid crystal, we estimated the critical tilt angle to be on the order of a few degrees. The linear stability analysis also revealed that the nematic and smectic order is modulated close to the boundaries. Since the probability for the formation of defects is larger in regions with a decreased modulus of the order parameter, these variations in the modulus of the order parameter open the way for a destabilization of the layered structure. We note that a detailed investigation of this point is beyond the scope of the present work. Finally, we could exclude an oscillatory instability for all physically reasonable regions in parameter space. The weakly non-linear analysis shows that the bifurcation is supercritical for most physically relevant regions in the parameter space. A detailed comparison to an independent approach was undertaken in a collaboration with simulation physicists from the Max-Planck- Institute for Polymer Research in Mainz. In a molecular dynamics simulation, a model layered liquid consisting of chains of four particles (AABB) was considered. The interaction potential of particles not connected by springs is attractive for like particles and repulsive for particles of a different nature. The simulation demonstrated the two main predictions of our analytic theory: The director tilts in the flow direction and, above a critical shear rate, the layers show stationary undulations with a wave vector in the vorticity direction. Besides this good qualitative agreement, a reasonable quantitative agreement for the critical shear rate was found.</description>
      <author>Günter Auernhammer</author>
      <category>doctoralthesis</category>
      <guid>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/60</guid>
      <pubDate>Wed, 28 Jan 2004 15:43:58 +0100</pubDate>
    </item>
    <item>
      <title>Novel Precursors for Polymer-Protein-Conjugate Synthesis via Reversible Addition-Fragmentation Chain Transfer Polymerization</title>
      <link>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/38</link>
      <description>The RAFT polymerization of N-isopropylacrylamide with two different chain transfer agents, namely benzyl 1-pyrrolecarbodithioate and cumyl 1-pyrrolecarbodithioate, yielded polymers with narrow molecular weight distributions as well as Mn values that were in good agreement with the calculated ones. A comparison between the Mn values determined from gel permeation chromatography, GPC, and the values from MALDI-TOF mass spectrometry showed that the molecular weights obtained from GPC using polystyrene standards were considerably higher. A relation between log Mn,MALDI and log Mn,GPC was established, which permitted construction of a calibration curve for PNIPAAm polymers. In-situ Fourier-transform near-infrared spectroscopy was applied for the reliable determination of monomer conversions and it indicated living characteristics. Both polymerization processes showed an induction period that seems to be correlated with a retardation in rate, where the induction time is higher for the cumyl chain transfer agent as compared to the benzyl chain transfer agent of the same concentration. The induction periods decrease with decreasing transfer agent concentration and were explained in terms of the different stabilities of the respective radicals that add to monomer in the reinitiation step. The more stable cumyl radical adds slower than the benzyl radical. Both UV spectroscopy and MALDI-TOF mass spectrometry confirm the presence of the expected dithiocarbamate endgroups. MALDI-TOF characterization of the polymer samples showed the transfer agent endgroups together with some initiator-derived polymers. Endgroups that seemed to originate from disproportionation or transfer were the result of fragmentation under MALDI conditions as was shown by a post source decay analysis and MALDI-TOF characterization of the hydrolyzed polymer. With amine-reactive diacetone acrylamide, 2-vinyl-4,4-dimethyl-5-oxazolone and N-hydroxysuccinimide methacrylate, new monomers were polymerized via RAFT in a controlled manner. Poly(diacetone acrylamide) and poly(2-vinyl-4,4-dimethyl-5-oxazolone) showed low polydispersities and good control over molecular weight, where poly(N-hydroxysuccinimide methacrylate) displayed relatively high polydispersities despite the controlled polymerization evident from the monomodal GPC traces. These amine-reactive polymers were subsequently used for successful conjugation to the primary amino group of the model peptide glycine-leucine. For poly(N-isopropylacrylamide)-block-poly(acrylic acid), PNIPAAm-b-PAA, it was demonstrated that hydrogen bonding between N-isopropylacrylamide and acrylic acid units influences strongly its behavior in both the solid state and in solution. The block copolymers form micelles in aqueous solutions in dependence of pH and temperature. Cloud point measurements indicated the formation of larger aggregates at pH 4.5 and temperatures above LCST, whereas micelles formed at pH 5-7 and temperatures above LCST. At pH 5.6 and 50 °C, only micelles were found, whereas, at lower temperatures, larger aggregates and micelles coexist. Formation of larger aggregates by hydrogen bonding interactions was revealed by IR and Raman spectroscopy as well as by cryogenic transmission electron microscopy and dynamic light scattering. Differential scanning calorimetry yielded glass transition temperatures of PNIPAAm-b-PAA that were well above the transition temperatures of the homopolymers, demonstrating molecular interactions between the acrylic acid and the N-isopropylacrylamide blocks. Conjugation of sulfhydryl-terminated PNIPAAm to thiol disulfide exchange reagents and maleimides was probed for later conjugation to proteins. Evaluation of the different cross-linking systems resulted in the choice of maleimides as cross-linkers for subsequent conjugation to the protein streptavidin. Sulfhydryl-terminated PNIPAAm-b-PAA was conjugated to the streptavidin mutant S139C using a bismaleimide cross-linker and also direct conjugation via disulfide linkage. Both conjugations were successful and proceeded with more than 50 % conversion. Conjugation of PNIPAAm and PNIPAAm-b-PAA was also achieved by non-covalent attachment of the biotinylated polymers to wild-type streptavidin. Conjugates of wild-type streptavidin with biotinylated PNIPAAm-b-PAA were found to remain dissolved at temperatures above LCST even at very low pH values, which was in contrast to the observed precipitation of the unconjugated block copolymer at pH &lt;= 4.5. Conjugates of wild-type streptavidin with biotinylated PNIPAAm of different molecular weights formed aggregates in aqueous solutions above LCST and a dependence of aggregate size on the size of the polymer was found</description>
      <author>Christine Maria Schilli</author>
      <category>doctoralthesis</category>
      <guid>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/38</guid>
      <pubDate>Tue, 29 Jul 2003 14:16:20 +0200</pubDate>
    </item>
    <item>
      <title>Self-Assembly of Block Copolymers in External Fields</title>
      <link>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/12</link>
      <description>The influence of external fields on the microdomain structure of block copolymers has been studied. Both surface fields and electric fields have been considered. External electric fields are used to create macroscopically oriented bulk samples. In order to circumvent limitations associated with the application of external fields to melts of high molecular weight block copolymers and multiblock copolymers of complex architecture, a new solvent-based procedure is introduced, i.e. the block copolymer microdomains are aligned by application of an electric field (E ~ 1 - 2 kV/mm) during solvent casting of bulk samples. In order to elucidate the dominating parameters and governing mechanisms, the microdomain orientation kinetics of concentrated block copolymer solutions exposed to a DC electric field is investigated by time-resolved synchrotron small-angle X-ray scattering (SAXS) at the ID02 beamline at the European Synchrotron Radiation Facility (ESRF) in Grenoble, France. As a first model system, a lamellar polystyrene-b-polyisoprene block copolymer dissolved in toluene is used. The orientation kinetics follows a single exponential behavior with characteristic time constants varying from a few seconds to some minutes depending on polymer concentration, temperature, electric field strength, and system size. Furthermore, two mechanisms governing the electric field alignment of a lamellar block copolymer from concentrated solutions are identified. It is shown that depending on the segregation power (c µ fP, c µ 1/T) a single mechanism dominates the orientation process, i.e. in a weakly segregated system (low concentration or high temperature) the migration of boundaries prevails, whereas a stronger phase separated system (high concentration or low temperature) predominantly exhibits rotation of grains. In addition, the orientation kinetics slows down with increasing polymer concentration, which can be correlated to the respective solution viscosity and the mechanism of orientation. Moreover, the influence of the electric field strength on the orientation kinetics is determined, including a threshold value below which no electric field induced orientation could be achieved on the time scale of the experiment. The time constants of the fastest processes were in the range of 0.5 sec, reaching a final orientation described by order parameters of up to P2 = -0.35. Finally, the variation of temperature yields control of the governing mechanisms at a fixed polymer concentration. In additional studies, the dielectric contrast of the block copolymer components was varied systematically (PS-b-PI, PS-b-PMMA, PS-b-PtBMA, PS-b-PHEMA-b-PMMA, PS-b-P2VP). It is found that a high dielectric contrast leads to faster alignment kinetics (e.g. the time constants of the fastest processes for a PS-b-P2VP diblock system in THF are in the range of 0.3 sec) and reduces the threshold field strength (around 200 V/mm for PS-b-P2VP). Furthermore, it could be shown that the interplay between degree of phase-separation, solution viscosity and dielectric contrast is crucial to decide if a given polymer/solvent system can be used for electric field-induced microdomain alignment. For example, it was found that PS-b-PtBMA shows electric field-induced orientation of the microdomains while PS-b-PMMA does not. This can be explained by the larger interaction parameter cST compared to cSM leading to a phase-separated solution at lower viscosities. In a similar way, the introduction of a high dielectric constant middle block (PHEMA) into a PS-b-PMMA, which additionally enhances phase separation, is shown to be the key to creating a well-performing methacrylate-based block copolymer system for electric field induced alignment from solution. Finally, we could show that the even more complex lamellar and core-shell cylindrical PS-b-P2VP-b-PtBMA high molecular weight triblock copolymer systems could be oriented by virtue of an electric field from solution. In summary, it was demonstrated that electric field alignment of block copolymer domains from solution is a powerful tool to generate highly anisotropic bulk block copolymer samples. The large variety of parameters which we can control allows us to further improve the preparation of macroscopically aligned melt samples via solvent casting in the presence of an electric field.</description>
      <author>Alexander Böker</author>
      <category>doctoralthesis</category>
      <guid>http://opus4.kobv.de/opus4-ubbayreuth/frontdoor/index/index/docId/12</guid>
      <pubDate>Thu, 02 Jan 2003 11:45:57 +0100</pubDate>
    </item>
  </channel>
</rss>
