TY - THES A1 - Gostkowska-Lekner, Natalia Katarzyna T1 - Organic-inorganic hybrids based on P3HT and mesoporous silicon for thermoelectric applications T1 - Organisch-anorganische Hybride basierend auf P3HT und porösem Silizium für thermoelektrische Anwendungen N2 - This thesis presents a comprehensive study on synthesis, structure and thermoelectric transport properties of organic-inorganic hybrids based on P3HT and porous silicon. The effect of embedding polymer in silicon pores on the electrical and thermal transport is studied. Morphological studies confirm successful polymer infiltration and diffusion doping with roughly 50% of the pore space occupied by conjugated polymer. Synchrotron diffraction experiments reveal no specific ordering of the polymer inside the pores. P3HT-pSi hybrids show improved electrical transport by five orders of magnitude compared to porous silicon and power factor values comparable or exceeding other P3HT-inorganic hybrids. The analysis suggests different transport mechanisms in both materials. In pSi, the transport mechanism relates to a Meyer-Neldel compansation rule. The analysis of hybrids' data using the power law in Kang-Snyder model suggests that a doped polymer mainly provides charge carriers to the pSi matrix, similar to the behavior of a doped semiconductor. Heavily suppressed thermal transport in porous silicon is treated with a modified Landauer/Lundstrom model and effective medium theories, which reveal that pSi agrees well with the Kirkpatrick model with a 68% percolation threshold. Thermal conductivities of hybrids show an increase compared to the empty pSi but the overall thermoelectric figure of merit ZT of P3HT-pSi hybrid exceeds both pSi and P3HT as well as bulk Si. N2 - Diese Arbeit präsentiert eine umfassende Studie über Synthese, Struktur und thermoelektrische Transporteigenschaften von organisch-anorganischen Hybriden basierend auf P3HT und porösem Silizium. Es wird die Auswirkung der Einbettung von Polymerin Siliziumporen auf den elektrischen und thermischen Transport untersucht. Morphologische Studien bestätigen eine erfolgreiche Polymerinfiltration und Diffusionsdotierung, wobei etwa 50% des Porenraums mit konjugiertem Polymer gefüllt sind. Synchrotronexperimente zeigen keine spezifische Ordnung des Polymers innerhalb der Poren. P3HT-pSi-Hybride zeigen einen um fünf Größenordnungen verbesserten elektrischen Transport im Vergleich zu porösem Silizium und sogenannte Powerfaktoren, die mit anderen P3HT-anorganischen Hybriden vergleichbar sind oder diese übertreffen. Die Analyse lässt auf unterschiedliche Transportmechanismen in beiden Materialien schließen. In pSi bezieht sich der Transportmechanismus auf eine Meyer-Neldel-{Kompensa\-tionsregel}. Die Analyse der Hybriddaten unter Verwendung des Potenzgesetzes im Kang-Snyder-Modell legt nahe, dass ein dotiertes Polymer hauptsächlich Ladungsträger für die pSi-Matrix bereitstellt, ähnlich dem Verhalten eines {dotier\-ten} Halbleiters. Der stark unterdrückte Wärmetransport in porösem Silizium wird mit einem modifizierten Landauer/Lundstrom-Modell und Effektivmediumtheorien behandelt, die zeigen, dass pSi mit einem Perkolationsschwellenwert von 68% gut mit dem Kirkpatrick-Modell übereinstimmt. Die {Wärmeleitfähigkei\-ten} von Hybriden zeigen einen Anstieg im Vergleich zum leeren pSi, aber der gesamte thermoelektrische Gütefaktor ZT des P3HT-pSi-Hybrids übertrifft sowohl pSi und P3HT als auch den von Bulk-Si. KW - physics KW - energy KW - thermoelectricity KW - organic-inorganic hybrids KW - Energie KW - organisch-anorganische Hybride KW - Physik KW - Thermoelektrizität Y1 - 2024 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-620475 ER - TY - JOUR A1 - Gostkowska-Lekner, Natalia Katarzyna A1 - Wallacher, Dirk A1 - Grimm, Nico A1 - Habicht, Klaus A1 - Hofmann, Tommy T1 - A novel electrochemical anodization cell for the synthesis of mesoporous silicon JF - Review of scientific instruments : a monthly journal devoted to scientific instruments, apparatus, and techniques N2 - A novel design of an electrochemical anodization cell dedicated to the synthesis of mesoporous, single-crystalline silicon is presented. First and foremost, the design principle follows user safety since electrochemical etching of silicon requires highly hazardous electrolytes based on hydrofluoric (HF) acid. The novel cell design allows for safe electrolyte handling prior, during, and post-etching. A peristaltic pump with HF-resistant fluoroelastomer tubing transfers electrolytes between dedicated reservoirs and the anodization cell. Due to the flexibility of the cell operation, different processing conditions can be realized providing a large parameter range for the attainable sample thickness, its porosity, and the mean pore size. Rapid etching on the order of several minutes to synthesize micrometer-thick porous silicon epilayers on bulk silicon is possible as well as long-time etching with continuous, controlled electrolyte flow for several days to prepare up to 1000 mu m thick self-supporting porous silicon membranes. A highly adaptable, LabVIEW((TM))-based control software allows for user-defined etching profiles. Y1 - 2020 U6 - https://doi.org/10.1063/5.0008536 SN - 0034-6748 SN - 1089-7623 VL - 91 IS - 10 PB - American Institute of Physics CY - Melville, NY ER - TY - JOUR A1 - Kojda, Danny A1 - Hofmann, Tommy A1 - Gostkowska-Lekner, Natalia Katarzyna A1 - Habicht, Klaus T1 - Characterization and modeling of the temperature-dependent thermal conductivity in sintered porous silicon-aluminum nanomaterials JF - Nano research N2 - Nanostructured silicon and silicon-aluminum compounds are synthesized by a novel synthesis strategy based on spark plasma sintering (SPS) of silicon nanopowder, mesoporous silicon (pSi), and aluminum nanopowder. The interplay of metal-assisted crystallization and inherent porosity is exploited to largely suppress thermal conductivity. Morphology and temperature-dependent thermal conductivity studies allow us to elucidate the impact of porosity and nanostructure on the macroscopic heat transport. Analytic electron microscopy along with quantitative image analysis is applied to characterize the sample morphology in terms of domain size and interpore distance distributions. We demonstrate that nanostructured domains and high porosity can be maintained in densified mesoporous silicon samples. In contrast, strong grain growth is observed for sintered nanopowders under similar sintering conditions. We observe that aluminum agglomerations induce local grain growth, while aluminum diffusion is observed in porous silicon and dispersed nanoparticles. A detailed analysis of the measured thermal conductivity between 300 and 773 K allows us to distinguish the effect of reduced thermal conductivity caused by porosity from the reduction induced by phonon scattering at nanosized domains. With a modified Landauer/Lundstrom approach the relative thermal conductivity and the scattering length are extracted. The relative thermal conductivity confirms the applicability of Kirkpatrick's effective medium theory. The extracted scattering lengths are in excellent agreement with the harmonic mean of log-normal distributed domain sizes and the interpore distances combined by Matthiessen's rule. KW - thermal conductivity KW - mesoporous silicon KW - porosity KW - spark plasma KW - sintering KW - nanoscale modeling Y1 - 2022 U6 - https://doi.org/10.1007/s12274-022-4123-y SN - 1998-0124 SN - 1998-0000 VL - 15 IS - 6 SP - 5663 EP - 5670 PB - Tsinghua Univ. Press CY - Beijing ER -