BAM Dissertationen ohne Nummerierung
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- Acoustic actuator (1)
- Alumina (1)
- Coating (1)
- High-Temperature Corrosion (1)
- Layer-by-layer deposition (1)
- NEXAFS (1)
- Oxyfuel (1)
- Sound source (1)
- Steel (1)
- Switchable rotaxane (1)
The objective of the present work was the investigation and demonstration of the potential of sol-gel alumina layers as corrosion protection of commercial power plant steels under oxyfuel conditions. The starting points of this work were modified Yoldas-sols which were developed in the BAM-department 5.6. These sols were suitable for the spin-coating method only. The application of coatings on tubes by spin-coating is impossible. Therefore, the chemical composition of the modified Yoldas-sol had to be adapted to the dip- and spray-coating techniques.
Exclusively the sol with the composition s-0.52-6-1.5 with a nitrate/aluminium ratio of 0.52; a solid content of 6 wt.% and a PVP (binder) content of 1.5 wt.% could fulfill the necessary criteria: long-term stability; formation of a dense, crack-free and well adhered layer on polished metal surfaces; as well as high protective abilities against corrosion in H2O-CO2-O2-SO2.
The commercial power plant steel X20CrMoV12-1 (X20) and the steel X12Cr13 were successfully coated with the sol s-0.52-6-1.5 by means of the dip-coating method. An at least 400 nm thick alumina layer (δ-Al2O3) is necessary to ensure the corrosion protection of these steels. The corrosion of the coated samples compared to that of the uncoated ones was significantly reduced, even after 1000 h of exposure in a H2O-CO2-O2-SO2 atmosphere at 600°C. Sulfur and carbon were not detected at the substrate surface or beneath the coating. Hence the transport of the flue gas components SO2 and CO2 into as well as through the alumina layer could be hindered. The diffusion of the alloying elements (Cr, Mn, Si) into the alumina layer resulted in the formation of mixed oxides like δ-(Al,Cr)2O3. Formation of such phases considerably contributed to the corrosion protection.
The long-term stability of the sol s-0.52-6-1.5 and the high protective abilities of the alumina layer on commercial power plant steels provide a good basis for an industrial application.
Switchable Surfaces: Mono- and Multilayers of Stimuli-Responsive Supramolecules on Solid Supports
(2016)
Rotaxanes are mechanically interlocked molecules (MIMs) that are considered to be excellent prototypes for the development of molecular machines. They comprise a discrete number of molecules that are bound to each other via non-covalent interactions. Mechanically interlocked means that a covalent bond must be broken in order to separate the molecules from another. If the rotaxanes are furthermore provided with different binding sites, they can perform a con-formational change and thus a nanoscopic movement by the application of an external stimu-lus. However, this movement is not directed in solution and a macroscopic effect is therefore, if at all, very difficult to realize. The integration of rotaxanes into a reference system by, for example, the immobilization on a surface is regarded as a promising approach to convert the generated nanoscopic motion into a macroscopic effect.
The present work describes the immobilization of chloride-switchable rotaxanes onto surfaces using a variety of methods. In detail, the applied methods are the metal-mediated layer-by-layer (LbL) self-assembly and the covalent deposition using click chemistry, which can be con-sidered as separate approaches. Before the rotaxanes were immobilized, the deposition meth-ods were first established and gradually improved on the basis of earlier results by using dif-ferent macrocycle and guest molecules. Various template layers – so-called self-assembled monolayers (SAMs) – were used. These are terminated with pyridine or terpyridine for the metal-induced LbL deposition. Azide-terminated SAMs are used for the covalent deposition.
In the course of that, the following objectives were achieved: The deposition of diterpyridin functionalized macrocycles in multilayers with a preferential orientation was investigated and verified by transmission-UV/Vis, X-ray photoelectron spectroscopy (XPS) as well as near edge X-ray absorption fine structure (NEXAFS). In order to produce the multilayer, metal-ions and macrocycles were alternately deposited onto various SAMs. To enable further process control for the LbL deposition, Time-of-Flight Secondary Ion Mass Spectrometry (ToF-SIMS) has been extended by use of Principal Component Analysis (PCA) which is capable of analyzing even very small changes in the deposition procedure. By using two different macrocycles and four metals, a mixed multilayer was fabricated that can be programmed by its deposition sequence. The treatment of the multilayers with appropriate guest molecules showed that they are on one hand addressable to the lowest layer by an external stimulus and that they are on the other hand able to incorporate a relatively large amount of the guest. Additionally, the covalently deposited supramolecules are also able to bind guests and to adapt to their structures. In both cases, the reversibility could be shown by appropriate experiments. Finally, the introduction of pyridine-functionalized nanoparticles into the multilayers led to a higher guest uptake, which can be explained by the reduction of the macrocycle-order due to the uneven surface of the nanoparticles.
A thermophone is an electrical device for sound generation. The advantages of thermophones over conventional sound transducers such as electromagnetic, electrostatic or piezoelectric transducers are their operational principle which does not require any moving parts, their resonance-free behavior, their simple construction and their low production costs.
In this PhD thesis, a novel theoretical model of thermophonic sound generation in real gases has been developed. The model is experimentally validated in a frequency range from 2 kHz to 1 MHz by testing more than fifty thermophones of different materials, including Carbon nano-wires, Titanium, Indium-Tin-Oxide, different sizes and shapes for sound generation in gases such as air, argon, helium, oxygen, nitrogen and sulfur hexafluoride.
Unlike previous approaches, the presented model can be applied to different kinds of thermophones and various gases, taking into account the thermodynamic properties of thermophone materials and of adjacent gases, degrees of freedom and the volume occupied by the gas atoms and molecules, as well as sound attenuation effects, the shape and size of the thermophone surface and the reduction of the generated acoustic power due to photonic emission. As a result, the model features better prediction accuracy than the existing models by a factor up to 100. Moreover, the new model explains previous experimental findings on thermophones which cannot be explained with the existing models.
The acoustic properties of the thermophones have been tested in several gases using unique, highly precise experimental setups comprising a Laser-Doppler-Vibrometer combined with a thin polyethylene film which acts as a broadband and resonance-free sound-pressure detector. Several outstanding properties of the thermophones have been demonstrated for the first time, including the ability to generate arbitrarily shaped acoustic signals, a greater acoustic efficiency compared to conventional piezoelectric and electrostatic airborne ultrasound transducers, and applicability as powerful and tunable sound sources with a bandwidth up to the megahertz range and beyond.
Additionally, new applications of thermophones such as the study of physical properties of gases, the thermo-acoustic gas spectroscopy, broad-band characterization of transfer functions of sound and ultrasound detection systems, and applications in non-destructive materials testing are discussed and experimentally demonstrated.