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Thermal and Dynamic Glass Transition in Ultrathin Films of Homopolymers and a Miscible Polymer Blend
(2014)
Nowadays nanoscale thin polymer films are widely used in many fields like coatings, membranes, sensors, electronic devices and so on. Meanwhile, a lot of research work has evidenced the fact that many physical properties (glass transition, crystallization, dewetting, physical aging, etc.) of ultrathin polymer films show strong deviations from their bulk behavior. Since the aforementioned properties of polymer are closely related to their application and functionality, the discrepancies motivated us to obtain a more complete understanding of how nanoscale confinement affects the physical properties of polymer. The research work presented in this thesis is focused on understanding how the free surface (air- polymer interface), the polymer-substrate interface and the film thickness influence the glass transition temperature (Tg) and the related segmental dynamics (α-relaxation process) in both homopolymers and miscible polymer blends of thin films. Complementary experimental techniques including Differential Scanning Calorimetry (DSC), Capacitive Scanning Dilatometry (CSD), Broadband Dielectric Spectroscopy (BDS) and Specific Heat Spectroscopy (SHS) have been used to investigate the glass transition of thin polymer films from both the thermodynamic and the kinetic point of view. In the thesis the film thickness dependence of Tg and segmental dynamics of different thin polymer films have been investigated. For ultrathin polycarbonate (PC) films capped between two aluminum (Al) layers an increase of both the glass transition temperature (Tg) and Vogel temperature (T0) with decreasing film thickness (d) was observed when the thickness became lower than 20 nm. The segmental relaxation time at a fixed temperature was found to increase for the ultrathin PC film of 19 nm measured by BDS, whereas no thickness dependency of the segmental dynamics was detected within the experimental error limit for the PC films supported on silicon dioxide (SiO2) (10-192 nm) in the SHS measurements. These properties are discussed in terms of the thin film geometry and the relevant interfacial interaction between the polymer and the substrate. In the case of thin polystyrene (PS) films with high molecular weight (Mw), Tg is decreasing with reducing film thickness while the segmental dynamics is independent of film thickness. Moreover, the effects of the Mw and the annealing protocol performed on thin PS films on their Tg and segmental dynamics is studied. In the part of thin poly(vinyl methyl ether) (PVME) films, no thickness dependence of the segmental dynamics was observed in the SHS measurements. The last part of the thesis was concentrated on the thin films of a miscible polymer blend, PS/PVME with the weight fraction of 50/50. It was observed that the segmental dynamics became faster with reducing the film thickness. This phenomenon is explained in terms of surface enrichment of PVME in the polymer blend system where PVME has a lower surface energy than PS. The segmental dynamics of the PVME-enriched free surface layer are faster than the bulk dynamics. Such free surface effect becomes so predominant with reducing the film thickness that it affects the segmental dynamics of the whole films detected by SHS using differential AC chip-based calorimetry. X-ray photoelectron spectroscopy (XPS) was used to probe the surface composition in order to confirm such surface enrichment phenomena.
Flammschutz von polymeren Baustoffen: Bewertung von Konzepten auf der Basis von small- scale Cone Calorimeter Untersuchungen. In der Arbeit wurden zwei unterschiedliche Flammschutzkonzepte polymerer Baustoffe mit Hilfe des Cone Calorimeter untersucht und bewertet. Polymer-Schicht-Nanocomposites sind ein neues Konzept für flammgeschützte Werkstoffe, die aus einer Polymermatrix und der Zugabe eines nanoskaligen Schichtsilikat- Additivs von ca. 5 Gew.-% bestehen. Im Brandfall bilden die Schichtsilikate eine Barriere, die den Wärmetransport in das Material bzw. den Stofftransport der Pyrolysegase aus dem Material hemmt. Mit einem Modellsystem wurde gezeigt, dass dieser Barriereeffekt das Brandverhalten hinsichtlich der Flammenausbreitung verbessert, in anderen Brandszenarien aber wirkungslos bleibt. Die Ergebnisse der Cone Calorimeter Untersuchungen wurden mit denen der Entflammbarkeitstests UL 94 und LOI verglichen. Eine Korrelation in Richtung kleiner Probendimensionen (downscale) und in Richtung Phase der Brandentstehung wurde aufgezeigt. Die Anwendung intumeszierender Beschichtungen auf Bauteile verschiedener Art, wie z. B. tragende Stahlkonstruktionen, ist ein etabliertes Brandschutzkonzept. Das intumeszierende Polymermaterial schäumt unter Wärmeeinwirkung auf und bildet eine wärmeisolierende Schicht. Zur Bewertung der Wirkungsweise dieses Polymermaterials wurde ein auf Temperaturmessungen basierendes Verfahren mit dem Cone Calorimeter und für Simulationsrechnung entwickelt. Die Ergebnisse wurden mit denen aus Kleinprüfstanduntersuchungen verglichen. Eine Korrelation in Richtung großer Probendimensionen (upscale) und in Richtung der Phase des voll entwickelten Brandes konnte bis zu einer Temperaturgrenze gezeigt werden.
Plasma chemical methods are well suited for introducing functional groups to the surface of chemically inert polymers such as polyolefins. However, a broad variety of functional groups is often formed. Unfortunately, for further chemical processing such as grafting of molecules for advanced applications a highly dense and monotype functionalized polyolefin surface is needed. Therefore, the main task was to develop a selective surface functionalization process, which forms preferably one type of functional groups at the surface in high and variable concentration. Amongst the novel plasma methods, the under-water plasma process (UWP) is one of most attractive to solve the problem of monotype functionalization. Such plasma is an efficient source of ions, electrons, UV-radiation, high frequency shock waves, radicals such as hydroxyl radical and reactive neutral molecules such as hydrogen peroxide, hydrogen and oxygen. It was found that underwater plasma and the closely related glow discharge electrolysis are interesting new methods for polymer surface functionalization. An effective modification into the topmost surface chemistry of polymer layer was observed by the collective effect of wet-chemistry, electrochemistry, atmospheric gas discharges, irradiation, and shock waves. Underwater capillary discharge was seen more effective in -OH functionalization and was largely seen as a flow dominated process because of the shock wave turbulences. Using such water-based plasma a fraction of 25-40% of all O-functional groups was produced as OH-groups in comparison to <10% OH produced in the oxygen low- pressure plasma. The exact concentration of the OH functionality was studied by TFAA gas phase derivatization and measuring the respective fluorine concentration by photoelectron spectroscopy (XPS). In contrast to established gas phase glow discharge processes, the water phase absorbs and therefore limits the particle and radiation energy and thus the energy input into the polymer. Extensive oxidation, degradation, cross-linking and radical formation in the polymer is more limited than under gas plasma exposure because of the liquid water environment, which moderates high energetic plasma species. The variety of plasma produced species in the water phase is also much smaller because of the limited reaction possibilities of the plasma with water. The possibility to admix a broad variety of chemical additives makes underwater plasma additionally highly attractive for the chemist. At last, the water removes all low-molecular weight oxidized products formed by plasma-induced polymer degradation. Hydrogen peroxide and the catalyst (Fe-ZSM5) should influence or increase the equilibrium concentration of OH radicals in the underwater process. It was supposed that these radicals play the most important role for OH functionalization of polyolefin surfaces. Hydrogen peroxide was believed to be the most prominent precursor for OH group formation in the UWP. The catalyst should modulate the steady state of OH group formation and recombination, and thus accelerate the functionalization. This was confirmed by an increased oxidation rate. Owing to the detection limit of XPS the C-O bond selectivity was defined as clearly resolvable subpeak within the C1s signal assigned to C-OH, C-O-C and other singly C-O bonded species. This bondamounts 47 C-O bonds/100 O atoms with pure UWP system and enhances to a maximum of the 81 C-O bonds/100 O atoms using the Fe-ZSM5 catalyst system. Therefore, this method exhibits a great progress for a start. However, after TFAA derivatization the fraction of desired OH groups could not be significantly increased. In the continuation acetic acid, acrylic acid, maleic and itaconic acid were used as additive monomers. The chemical selectivity in -COOH bond formation using bi-carboxylic additives was seen inferior. Acetic acid is not a chemically polymerizing monomer but it could polymerize by monomer/molecular fragmentation and recombination to a cross linked layer. The other monomers form preferably water-soluble polymers on a preferred chemical way. Only the fragmented fraction of these monomers could form an insoluble coating by cross linking to substrate. The XPS analysis was used to track the alterations in COO- bond percentage on the PP surface. To identify the -COOH groups on substrate surface unambiguously, which have survived the plasma polymerization process, the gas phase derivatization with trifluoroethanol was performed. A much higher yield in COOH groups was achieved using the glow discharge electrolysis and acrylic acid.
Elastomerdichtungen finden als Bauteil oder Maschinenelement vielseitige Verwendung. Jedoch war trotz ihrer zentralen Bedeutung die untere Temperaturgrenze, bis zu der solche Dichtungen eingesetzt werden können, bisher nicht tiefgehend verstanden. Dieser Umstand erschwert die entsprechende notwendige sicherheitsrelevante Beurteilung. Mit der vorliegenden Arbeit ist deshalb das Ziel verfolgt worden, dass Materialverhalten repräsentativer Elastomerwerkstoffe in Abhängigkeit von der Temperatur zu verstehen und daraus dann abzuleiten, bis zu welcher Temperatur eine daraus hergestellte Dichtung unter Berücksichtigung der jeweiligen Einsatzbedingungen ihre Funktion noch sicher erfüllen kann. Ausgehend von der in der Literatur beschriebenen Aussage, dass eine Dichtung auch unterhalb der „Glasübergangstemperatur“ funktionsfähig ist, wurde der Einfluss des Glas-Gummi-Übergangs auf das Dichtungsversagen untersucht. Zunächst wurden dazu die Glasübergangstemperaturen an einer Vielzahl von Elastomeren mit gebräuchlichen Verfahren bestimmt, um diese mit dem Verhalten der Dichtung vergleichen zu können. Weiterhin wurde im Rahmen der Arbeit eine neue Charakterisierungsmethode des Tieftemperaturverhaltens von Elastomeren entwickelt, die die bisher für Dichtungen eingesetzte Normprüfung des Druckverformungsrests nachstellt. Mit dieser Methode ist im Vergleich zur Normprüfung jedoch eine deutlich schnellere und automatisierbare Untersuchung des Materialverhaltens gegeben. Darüber hinaus ist durch eine modellgestützte Auswertung eine Extrapolation der Messdaten auf zusätzliche Temperaturen möglich, wodurch der experimentelle Aufwand weiter reduziert wird. Zur temperaturabhängigen Charakterisierung des Versagensvorgangs an realen Bauteilen wurde deren Dichtverhalten mittels eines dafür entwickelten Versuchsstandes untersucht. Die festgestellte Abhängigkeit der Versagenstemperatur vom Verpressgrad konnte unter Verwendung der Ergebnisse aller angewandten Charakterisierungsmethoden für die hier untersuchten statisch beanspruchten Dichtungen erklärt werden. Zudem lassen sich aus dem mit Hilfe des Zeit-Temperatur- Superpositionsprinzips gewonnenen Informationen zur Zeitabhängigkeit der Materialeigenschaften auch Aussagen zum Verhalten von dynamisch beanspruchten Dichtungen ableiten. Mit dem Ergebnis der Arbeit zum Verständnis des Verhaltens von Elastomerdichtungen bei tiefen Temperaturen wird die gezielte Beurteilung und Auswahl von sicherheitsrelevanten Dichtsystemen in Zukunft vereinfacht.
The motivation of this study was to pursue effective eco-friendly and economical flame retarded polymer materials. With wide-ranging advantages such as improved fire and physical properties, halogen-free and relatively low cost, layered silicate / epoxy nanocomposite (EP_LS) was targeted for high efficiency of flame retardancy. One main goal of this study was to increase the understanding of the flame retardancy phenomenon in EP_LS by assessing the shielding effect of the protection layer experimentally and quantitatively. Another main goal of this study was to optimize the flame retardancy by the shielding effect in EP_LS.
In der vorliegenden Arbeit wird das Schädigungsverhalten eines kurzglasfaserverstärkten Polyamids analysiert. Die Mikrorissschädigung wird mittels Röntgenrefraktionsanalyse für verschiedene mechanische Betriebsbelastungen untersucht. Dabei werden Möglichkeiten und Grenzen der Röntgenrefraktionsanalyse für kurzglasfaserverstärkte Polyamide herausgearbeitet. Insbesondere werden der Einfluss der Faserorientierungsverteilung und der Einfluss der Schädigungsmechanismen auf die Röntgenrefraktionsanalyse und deren Ergebnisinterpretation betrachtet. Die Methode ermöglicht eine quantitative und phänomenologisch basierte Mikrorissschädigungscharakterisierung. Für den untersuchten Werkstoff tritt Mikrorissschädigung in Form von Faser-Matrix-Ablösung und Matrixrissbildung auf. Die Schädigungshöhe korreliert linear mit dem nichtlinear elastischen Dehnungsanteil und ist abhängig von der Art der Betriebsbelastung. Eine Feuchtigkeitsaufnahme des Werkstoffs kann das Mikrorissschädigungsverhalten deutlich beeinflussen. Die Schädigung durch Mikrorissbildung tritt vorrangig unter Zugbelastungen auf. Die Makroschädigung durch Einzelrissfortschritt wird in Abhängigkeit der Faserorientierung und des Feuchtegehalts in einem automatisierten Versuch charakterisiert. Aufgrund der gewonnenen Erkenntnisse wird ein empirisches Berechnungsmodell erstellt. Die Untersuchungen des Mikro- und Makroschädigungsverhaltens werden fraktografisch begleitet, um die in den Modellvorstellungen vorausgesetzten Schädigungs- und Versagensmechanismen abzusichern.
Up to now only little knowledge has been recorded about the fire behavior and flame retardancy of wood-plastic composites (WPCs). The use of WPCs has increased continuously in recent years. Especially in their main field of application as a decking material, WPCs present a big share of the market. To date no flame-retarded solution has been introduced for WPC materials that fulfils the necessary requirements. But flameretarded materials are indispensable, especially for indoor use and the protection of escape routes. In this study basic knowledge about the fire behavior of WPCs is investigated first. Second, the effectiveness and mode of action of different flame-retardant additives is investigated. Special attention is drawn to products made of WPC material. Therefore WPC was further investigated in its main field of application as decking boards. The fire behavior of materials and products was investigated by means of cone calorimeter measurements as well as radiant panel tests. Furthermore numerical simulations were carried out to study the effects of various thermal material properties on burning behavior. Thermal decomposition was studied using thermogravimetric methods and spectroscopic investigations. Against this background, models for thermal decomposition pathways were built for combinations of WPC material with different flame retardants. WPCs show burning behavior similar to that of pure wood samples with an increased heat release rate due to polymeric fractions. It is shown that all investigated flame retardants had a positive effect on the burning behavior of WPCs. The best results were achieved by the flame retardants ammonium polyphosphate, Paxymer and expandable graphite. Especially in combination with red phosphorus, expandable graphite was highly effective because red phosphorus stabilized formed residue. Apart from the influence of flame retardants, other influencing factors like geometry and moisture content also played an important role concerning the flame retardancy of WPC decking boards. Indeed, hollow decking boards offer a reduced amount of combustible material, but their flame spread is increased in comparison to solid samples.
The behavior of amorphous polymers in contact with gas atmospheres is still an area of both fundamental scientific and applied industrial research. Applications range from the use as barrier materials or protective coatings to active layers in sensor applications (‘artificial nose’) and the large field of gas separation membranes. In all these applications, high concentrations of small penetrant molecules may lead to a plasticization of the polymer. This effect is utilized in processing applications, where supercritical carbon dioxide (CO2) can be used as a plasticizer.4 The phenomenon of penetrant induced plasticization of glassy polymers is also observed in gas separation membranes.5 In the process of natural gas sweetening, the CO2 content of the gas mixture is reduced by separation of the CO2 from the fuel gas methane (CH4) to avoid corrosion of pipelines and to enhance the fuel value. Solubility and diffusivity of the respective gas determine the separation performance of the membrane material, i.e., the permselectivity. Both parameters are connected to the internal structure of the polymer and its free volume. To achieve high throughputs, e.g. to enhance costeffectiveness, it is desirable to increase the CO2 solubility and mobility. However, the observed plasticization and the associated relaxations in the polymer matrix change its structure and free volume, and thereby affect the selectivity of the material.6 In addition, other properties of the polymer are influenced, e.g. a reduction of glass transition temperature,7 yield stress8 and creep compliance9 have been observed. The origin and mechanism of these structural relaxations are poorly understood, as are the factors that influence solubility and mobility of the plasticizing penetrant. This lack of knowledge leads to a development of new or optimized materials, which is in part determined by trial and error. A deeper understanding of the phenomena that accompany gas sorption on the molecular level is therefore needed to control material properties and enable a targeted design of functional materials. Therefore, in this work, laboratory experiments are combined with detailed atomistic molecular simulations. Modelling. In detailed atomistic molecular modeling, the interactions of an assembly of atoms, e.g. a polymer molecule, are calculated according to known physical laws. Several established analysis methods allow an indirect determination of certain properties of such assemblies, others can even be directly calculated.10 However, CPU-power limits both the size and the simulation time of such assemblies. The size of the simulated packing models used in this work (_ 5000 atoms) ranges among the larger models found in the literature. Forcefield based Molecular Dynamics (MD) simulations are calculated in femtosecond steps, but reliable results are usually not obtained until a nanosecond of net simulation time has been performed. Millions of interactions need to be calculated, making the time effort for these ‘virtual experiments’ comparable to laboratory experiments. However, increasing speed of single processors and the possibility of parallel processing will further reduce the evaluation times for such simulations in the future. The goal of computer simulations is therefore to establish reliable methods to predict material properties. Properties of new materials could then be assessed by simulations first and only the most promising materials need to be synthesized for further testing, reducing the expense of trial and error. Although some methods already exist to predict polymer/gas properties from simulations, which show well agreeing results in ideal circumstances, they frequently fail when applied to less moderate conditions, e.g., high penetrant concentrations, long time scales, large penetrants etc. The aforementioned gas induced plasticization of polymers presents such a case where the gap of time scales between experiment and available simulation time amounts to several orders of magnitude. The time scale of simulations is limited to a few nanoseconds and therefore it is not possible to directly simulate relaxations of the glassy matrix as they are observed experimentally. Experiments, on the other hand, yield results of the real macroscopic system, and though molecular details cannot be observed individually, the accumulated effects permit the analysis through models on a statistical or phenomenological basis. It is the aim of this work to survey new approaches of a combined analysis of experimental and modelling results and to establish, where possible, a convergence of boundary conditions or, alternatively, an identification and isolation of comparable aspects of these seemingly incompatible methods of research. To this effect, phenomenological models are utilized as a means of interpretation of experimental data as well as to construe modelling results.
The objective of this work is to demonstrate the practical application and sensitivity of ultrasound as a high frequency Dynamic Mechanical Analysis DMA technique for the characterisation of polymers. Conventional DMA techniques are used to determine thermo mechanical behaviour of polymers by typically employing dynamic shear or tensile loading modes at defined frequencies between 0.1 and 50 Hz. Sound waves may also be employed for DMA applications and depending on type of wave propagated, shear G´, G´´ and longitudinal L´, L´´ storage or loss modulus and tan (δ) may be determined from the measured acoustic parameters sound velocity and amplitude. The primary advantage of ultrasound DMA is that due to the compact sensor size it can easily be integrated into most manufacturing processes. To demonstrate the sensitivity of ultrasound to variations in the viscoelastic properties of polymers, the acoustic properties of a cured epoxy with an observed glass transition temperature of 86 °C (tan(δ) peak, 1Hz) were monitored in a temperature range from 20 to 200 °C and compared to conventional DMA results. The influence of measurement frequency, dispersion, hysteresis, reflections at material boundaries, and changes in material density on the measured sound velocity and amplitude were taken into account. To support conclusions a wide range of experimental data was evaluated using sensors operating in the frequency ranges 400 to 800 kHz and 3 to 6 MHz. The ultrasound results are compared to the tensile moduli E´, E´´ and tan(δ) measured using a conventional DMA technique operating at 0.1 to 33 Hz. Using different evaluation strategies such as the Williams Landel Ferry WLF equation it was possible to study the sensitivity of wave propagation to variations in the viscoelastic behaviour of a polymer. Taking advantage of this background knowledge, further experimental results are presented with the aim of demonstrating the sensitivity of this technique for cure monitoring applications and to the material transformations: gelation and vitrification. For this purpose an epoxy resin was cured at a range of constant temperatures whereby the curing reaction and the corresponding change in viscoelastic properties were monitored. Analysis techniques employed included ultrasound at 3 to 6 MHz, Differential Scanning Calorimeter DSC and Rheometry at 1 Hz. All results were summarised and presented graphically. Additionally an Arrhenius relationship was employed enabling direct comparison of results obtained from analysis techniques based on different working principles. Using this information, it was possible to demonstrate the practical application and the sensitivity of this technique to even small changes in viscoelastic properties of polymers.
The epoxy/metal interface regions are recognized as crucial for the mechanical reliability of composite materials. In particular, the spatial stress distribution is governed by modulus variations, which may result from the physical-chemical interactions between epoxy and the metal surface. The properties of the interphase between bulk polymer and metal were analyzed in nanometer scale. It was aimed to characterize the stiffness gradient of the polymeric interphase, which was formed by a thermoset being cured in contact with a metal surface.