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metal-sulfide and metal-nitride thin films with enhanced magneto-optical properties Project Background: Nanostructured functional materials ranging from metals, metal oxides, metal nitrides and metal
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Rare-Earth-Sulfide thin films with enhanced Magneto-Optical properties Project Background: Nanostructured functional materials ranging from metals, metal oxides, metal nitrides and metal sulphides
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for memristor and sensing applications Project Background: Nanostructured functional materials ranging from metals, metal oxides, metal nitrides and metal sulphides that are appealing for many applications in
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to serve as a gaseous, metal-free electrode and mediate electrochemical reactions. In particular, the injection of gas-phase electrons into solution to generate solvated electrons, one of the strongest
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to investigate how a grain-specific transcription factor regulates grain filling in barley. By combining state-of-the-art molecular, metabolic and in vivo MRI techniques, we seek to uncover its mechanism of action
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for memristor and sensing applications Project Background: Nanostructured functional materials ranging from metals, metal oxides, metal nitrides and metal sulphides that are appealing for many applications in
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2D materials. The project aims to explore the growth of multilayers from elemental materials and investigate solid-state reactions at interfaces. The successful candidate (m/f/d) will work on utilizing
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MOCVD, ALD, and AS-ALD processes Project Background: Thin film processing technologies such as metal-organic chemical vapor deposition (MOCVD), atomic layer deposition (ALD) and its variant area-selective
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-quality genomes and a repertoire of comparative methods to trace genomic differences in genes and regulatory elements. The PhD student will work closely with other members of our lab and researchers from
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. This research focuses on the converting waste heat into electrical energy. Traditional materials like Bi2 Te3 present challenges due to their reliance on rare elements and limited operational temperature range