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structure–property relationships and advancing the understanding of these novel catalytic systems. Perform electron microscopy analyses, including transmission electron microscopy (TEM) and in situ TEM
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profiles, and by electron microscopies (SEM, TEM) to observe the precipitation and the matrix (martensite, retained austenite) microstructures • Establishing prior austenite grain sizes by crystallographic
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Free-standing Functional Oxides This PhD project focuses on the development of a stable, electron-transparent crystalline platform for advanced in situ transmission electron microscopy (TEM) studies
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nanostructures—developed for tunable Josephson junctions in quantum devices—using high-resolution transmission electron microscopy (TEM). Currently, quantum processors suffer from short coherence times due
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, Transmission Electron Microscopy (for their lattice structure and crystalline defects) and transport measurements (both in the normal and superconducting state). Devices will be realized by clean room standard
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Evolution Under Ion Irradiation using transmission electron microscopy. In situ transmission electron microscopy (TEM) is a powerful characterization technique that can be used to provide a comprehensive
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analysis) advanced X-ray scattering: Total scattering, Pair Distribution Function (PDF), and Bragg Coherent Diffraction Imaging (at Institut Néel and ESRF) - (Identical-Location) Transmission Electron