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Field
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operando X-ray absorption and diffraction, will provide fundamental insight into the relation between material composition, structure, redox and phase behaviour, ionic conductivity, and battery performance
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materials. The work will involve sample synthesis, X-ray diffraction, optical spectroscopy experiments, as well as magnetothermodynamic, magnetomechanical and magnetoacoustic measurements at mK-temperatures
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to learn state-of-the-art lab methodology, comprising pulsed laser deposition (PLD), atomic force microscopy (AFM), advanced X-ray diffraction (XRD), and electrochemistry. Additionally, synchrotron
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transport measurements and point contact spectroscopy measurements, THz-Mueller Matrix Ellipsometry and advanced structural characterization (e.g. TEM, polarized neutron diffraction) as well as theoretical
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plasma-assisted CVD techniques; - Knowledge of characterization techniques: Raman spectroscopy, scanning electron microscopy, atomic force microscopy, X-ray diffraction, etc.; - Knowledge of vacuum
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characterise new phosphines and their nickel complexes, using Schlenk techniques, the glovebox, NMR spectroscopy, mass spectrometry, single-crystal X-ray diffraction and other techniques that might be deemed
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microscopy and x-ray diffraction techniques; mechanical testing using macro/micro-mechanical methods and failure investigation; and environmental behaviour under oxidation/corrosion and irradiation damage
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, morphological, chemical, and magnetic property characterization of permanent magnets (Nd-Fe-B) via TEM (EDS, EELS, HR(S)TEM, electron diffraction) and XPS. In situ TEM study (under heating and irradiation
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crystals using either electron or X-ray diffraction techniques. While candidates with experience in structure analysis based on powder diffraction, neutron diffraction, or scattering data will also be
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particle size analysis, including image-based or laser diffraction techniques. Carry out Size Exclusion Chromatography (SEC) and microscopy analyses, including Confocal Laser Scanning Microscopy (CLSM), to