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phase of the project, electron-transparent specimens will be prepared for TEM examination using plasma focused ion beam milling (FIB), followed by structural, compositional and electronic characterisation
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Your Job: Mixed-valence vanadium oxides express a variety of divergent magnetic, electronic and catalytic properties that make them attractive for numerous applications thanks in large part to
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laser/X-ray spectroscopy. Novel methods for characterizing, accessing, and manipulating amorphous materials and biological materials. Coherent diffraction imaging and its applications in free electron
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Your Job: Create confined electronic systems, based on state-of-the-art thin film technologies and subsequent delamination of atomically defined oxides. Master the transfer process for
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diffraction (XRD), scanning electron microscopy (SEM), X-ray computed tomography (XRCT) Expertise in designing and performing high-temperature and high-pressure in-situ experiments is advantageous. Fluency in
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diffraction study. This research will utilize advanced measurement facilities such as the X-ray free-electron laser facility SACLA, the large-scale synchrotron radiation facility SPring-8, NanoTerrace, and
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etc) Advanced characterization of steels, for example transmission electron microscopy and electron backscatter diffraction (EBSD). Mechanical property testing Materials modelling, with experience
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attracting scientists from all over the world conducting world-class research in physical, chemical, and materials sciences. More details about the instruments and their scientific impact can be found at https
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structural biology core facilities, including cryo-electron microscopy and NMR. Experienced crystallographers and individuals with backgrounds in structural biology, chemistry, or physics are encouraged
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structural biology core facilities, including cryo-electron microscopy and NMR. Experienced crystallographers and individuals with backgrounds in structural biology, chemistry, or physics are encouraged