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- Adsorption (1)
- Deformation (1)
- Dilatometrie (1)
- Elektronengas (1)
- Faser (1)
- Feldeffekttransistor (1)
- Field effect transistor (1)
- GaAs/AlGaAs Heterostruktur (1)
- GaAs/AlGaAs heterostructure (1)
- Halbleiter (1)
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- Fraunhofer ISC (1)
In dieser Arbeit werden Quantenpunkt-Speichertransistoren basierend auf modulationsdotierten GaAs/AlGaAs Heterostrukturen mit vorpositionierten InAs Quantenpunkten vorgestellt, welche in Abhängigkeit der Ladung auf den Quantenpunkten unterschiedliche Widerstände und Kapazitäten aufweisen. Diese Ladungsabhängigkeiten führen beim Anlegen von periodischen Spannungen zu charakteristischen, durch den Ursprung gehenden Hysteresen in der Strom-Spannungs- und der Ladungs-Spannungs-Kennlinie. Die ladungsabhängigen Widerstände und Kapazitäten ermöglichen die Realisierung von neuromorphen Operationen durch Nachahmung von synaptischen Funktionalitäten und arithmetischen Operationen durch Integration von Spannungs- und Lichtpulsen.
The goal of this work is to improve the understanding of adsorption-induced deformation in nanoporous (and in particular microporous) materials in order to explore its potential for material characterization and provide guidelines for related technical applications such as adsorption-driven actuation. For this purpose this work combines in-situ dilatometry measurements with in-depth modeling of the obtained adsorption-induced strains. A major advantage with respect to previous studies is the combination of the dilatometric setup and a commercial sorption instrument resulting in high quality adsorption and strain isotherms. The considered model materials are (activated and thermally annealed) carbon xerogels, a sintered silica aerogel, a sintered hierarchical structured porous silica and binderless zeolites of type LTA and FAU; this selection covers micro-, meso- and macroporous as well as ordered and disordered model materials.
All sample materials were characterized by scanning electron microscopy, gas adsorption and sound velocity measurements. In-situ dilatometry measurements on mesoporous model materials were performed for the adsorption of N2 at 77 K, while microporous model materials were also investigated for CO2 adsorption at 273 K, Ar adsorption at 77 K and H2O adsorption at 298 K. Within this work the available in-situ dilatometry setup was revised to improve resolution and reproducibility of measurements of small strains at low relative pressures, which are of particular relevance for microporous materials.
The obtained experimental adsorption and strain isotherms of the hierarchical structured porous silica and a micro-macroporous carbon xerogel were quantitatively analyzed based on the adsorption stress model; this approach, originally proposed by Ravikovitch and Neimark, was extended for anisotropic pore geometries within this work. While the adsorption in silica mesopores could be well described by the classical and analytical theory of Derjaguin, Broekhoff and de Boer, the adsorption in carbon micropores required for comprehensive nonlocal density functional theory calculations. To connect adsorption-induced stresses and strains, furthermore mechanical models for the respective model materials were derived. The resulting theoretical framework of adsorption, adsorption stress and mechanical model was applied to the experimental data yielding structural and mechanical information about the model materials investigated, i.e., pore size or pore size distribution, respectively, and mechanical moduli of the porous matrix and the nonporous solid skeleton. The derived structural and mechanical properties of the model materials were found to be consistent with independent measurements and/or literature values. Noteworthy, the proposed extension of the adsorption stress model proved to be crucial for the correct description of the experimental data.
Furthermore, it could be shown that the adsorption-induced deformation of disordered mesoporous aero-/xerogel structures follows qualitatively the same mechanisms obtained for the ordered hierarchical structured porous silica. However, respective quantitative modeling proved to be challenging due to the ill-shaped pore geometry of aero-/xerogels; good agreement between model and experiment could only be achieved for the filled pore regime of the adsorption isotherm and the relative pressure range of monolayer formation. In the intermediate regime of multilayer formation a more complex model than the one proposed here is required to correctly describe stress related to the curved adsorbate-adsorptive interface. Notably, for micro-mesoporous carbon xerogels it could be shown that micro- and mesopore related strain mechanisms superimpose one another.
The strain isotherms of the zeolites were only qualitatively evaluated. The result for the FAU type zeolite is in good agreement with other experiments reported in literature and the theoretical understanding derived from the adsorption stress model. On the contrary, the strain isotherm of the LTA type zeolite is rather exceptional as it shows monotonic expansion over the whole relative pressure range. Qualitatively this type of strain isotherm can also be explained by the adsorption stress model, but a respective quantitative analysis is beyond the scope of this work.
In summary, the analysis of the model materials' adsorption-induced strains proved to be a suitable tool to obtain information on their structural and mechanical properties including the stiffness of the nonporous solid skeleton. Investigations on the carbon xerogels modified by activation and thermal annealing revealed that adsorption-induced deformation is particularly suited to analyze even small changes of carbon micropore structures.
In order to shrink the size of semiconductor devices and improve their
efficiency at the same time, silicon-based semiconductor devices have
been engineered, until the material almost reaches its performance
limits. As the candidate to be used next in semiconducting devices,
single-wall carbon nanotubes show a great potential due to their
promise of increased device efficiency and their high charge carrier
mobilities in the nanometer size active areas. However, there are
material based problems to overcome in order to imply SWNTs in the
semiconductor devices. SWNTs tend to aggregate in bundles and it is
not trivial to obtain an electronically or chirally homogeneous SWNT
dispersion and when it is done, a homogeneous thin film needs to be
produced with a technique that is practical, easy and scalable. This
work was aimed to solve both of these problems.
In the first part of this study, six different polymers, containing
fluorene or carbazole as the rigid part and bipyridine, bithiophene or
biphenyl as the accompanying copolymer unit, were used to selectively
disperse semiconducting SWNTs. With the data obtained from
absorption and photoluminescence spectroscopy of the corresponding
dispersions, it was found out that the rigid part of the copolymer plays a
primary role in determining its dispersion efficiency and electronic
sorting ability. Within the two tested units, carbazole has a higher π
electron density. Due to increased π−π interactions, carbazole
containing copolymers have higher dispersion efficiency. However, the
electronic sorting ability of fluorene containing polymers is superior.
Chiral selection of the polymers in the dispersion is not directly
foreseeable from the selection of backbone units. At the end, obtaining a monochiral dispersion is found to be highly dependent on the used raw
material in combination to the preferred polymer.
Next, one of the best performing polymers due to high chirality
enrichment and electronic sorting ability was chosen in order to
disperse SWNTs. Thin films of varying thickness between 18 ± 5 to
755o±o5 nm were prepared using vacuum filtration wet transfer method
in order to analyze them optically and electronically.
The scalability and efficiency of the integrated thin film production
method were shown using optical, topographical and electronic
measurements. The relative photoluminescence quantum yield of the
radiative decay from the SWNT thin films was found to be constant for
the thickness scale. Constant roughness on the film surface and linearly
increasing concentration of SWNTs were also supporting the scalability
of this thin film production method. Electronic measurements on bottom
gate top contact transistors have shown an increasing charge carrier
mobility for linear and saturation regimes. This was caused by the
missing normalization of the mobility for the thickness of the active
layer. This emphasizes the importance of considering this dimension for
comparison of different field effect transistor mobilities.
Das Ziel dieser Arbeit ist eine umfassende numerische und experimentelle Charakterisierung des Wärmetransports in oxidkeramischen Faserisolationen im Hochtemperaturbereich. Zugleich sollen neue Konzepte für eine optimierte technische Auslegung von Faserisolationen erarbeitet werden. Oxidkeramiken zeigen im Infrarotbereich ein semitransparentes Verhalten. Das bedeutet, ein Teil der Strahlung gelangt durch die Probe, ohne gestreut oder absorbiert zu werden. Durch die Ausgestaltung als disperses Medium mit Abmessungen der Fasern im $\mu m$ Bereich wird jedoch eine starke Wechselwirkung mit infraroter Lichtstrahlung erzeugt. Man befindet sich im optischen Resonanzbereich. Technisch relevante Faserisolationen besitzen eine Rohdichte zwischen $50 \mathrm{kg/m^3}$ und $700 \mathrm{kg/m^3}$ und können als optisch dichtes Medium betrachtet werden. Eine Optimierung hinsichtlich der Dämmwirkung gegen Wärmestrahlung bedeutet eine massenspezifische Maximierung des Lichtstreuvermögens im relevanten Wellenlängenbereich. Hierzu werden in einer numerischen Studie keramische Hohlfaserisolationen mit konventionellen Fasern verglichen. Diese Abhandlung unter Berücksichtigung anwendungsnaher Aspekte gelangt zu der Schlussfolgerung, dass die Strahlungswärmestromdichte in Hohlfaserisolationen, im Vergleich zu konventionellen Isolationen, signifikant erniedrigt wird. Hinsichtlich der Gesamtwärmeleitfähigkeit ist eine Reduzierung um den Faktor zwei zu erwarten. \\
Trotz moderner Rechner ist die Anwendung der vollen Maxwellschen Streutheorie, insbesondere im Rahmen von Optimierungsaufgaben mehrschichtiger Streukörper, ein zeitaufwendiges Unterfangen. Um sinnvolle Parameterkonfigurationen bereichsweise eingrenzen zu können, wird eine Näherungsmethode für die Lichtstreuung an mehrschichtigen Zylindern weiterentwickelt und mit der vollständigen Maxwellschen Streutheorie verglichen. Es zeigt sich, dass das Modell für kleine bis moderate Brechungsindizes sehr gute Vorhersagekraft besitzt und auch zur näherungsweisen Berechnung der Streueffizienzen für räumlich isotrop angeordnete Zylinder herangezogen werden kann. \\
Neben den numerischen Studien wird im experimentellen Teil dieser Arbeit
eine kommerzielle Faserisolierung aus Aluminiumoxid hinsichtlich ihrer Wärmetransporteigenschaften charakterisiert. Die optischen Transportparameter Albedo und Extinktion werden mittels etablierter Messmethoden bestimmt. Bei bekannter Faserdurchmesserverteilung können diese Messwerte dann mit den theoretischen Vorhersagen der Maxwellschen Streutheorie verglichen werden.\\
Um technische Optimierungsmaßnahmen experimentell zu verifizieren, besteht die Notwendigkeit, die Temperaturleitfähigkeit bzw. die Wärmeleitfähigkeit auch bei hohen Temperaturen oberhalb von $1000^\mathrm{o}\mathrm{C}$ zuverlässig bestimmen zu können. Zu diesem Zweck wird ein Versuchsaufbau realisiert, um in diesem Temperaturbereich erstmals die sogenannte Thermal-Wave-Analyse anzuwenden. Durch Abgleich mit einem gekoppelten Wärmetransportmodell und einem etablierten Messverfahren wird die besondere Eignung der Thermal-Wave-Analyse für berührungsfreie Hochtemperaturmessungen gezeigt.