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Field
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for parameter estimation, degradation prediction, and analysis of electrochemical and structural characterization data, including X-ray CT image reconstruction, segmentation and quantitative microstructure
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state analysis with lab- and synchrotron-based X-ray spectroscopies to gain mechanistic understanding of metal–solvent interactions, insights into oxidation state changes, coordination environments, and
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chemistry, battery systems, interfacial electrochemistry, or metallic glass synthesis is desired. The position involves collaboration with theoretical modeling groups and utilization of synchrotron X-ray
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. Essential Function Yes Percentage of Time 10 Job Duty Conduct catalyst and device characterization using microscopy, X-ray techniques, spectroscopy, and electrochemical methods to verify catalyst structures
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or more of the following areas: - Recombinant protein expression and purification. - Biochemical and biophysical characterization of proteins and protein–nucleic acid complexes. - X-ray crystallography and
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biology program focused on single particle cryoEM, X ray crystallography, protein biochemistry, membrane reconstitution, and quantitative biophysics. The lab has dedicated access to a cryoARM300 300 kV
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), knowledge of MOF material research techniques, including at least powder X-ray diffraction (PXRD), spectroscopic techniques (FT-IR, NMR, UV-vis), sorption techniques (particularly gas physisorption), and
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characterize inorganic compounds or materials using techniques such as X-ray diffraction, NMR spectroscopy, and electron microscopy. Analyse experimental data, interpret results, and contribute
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-field fracture modelling, contact and micromechanics of particulate or composite materials, mechanical testing and X-ray tomography, and programming (e.g. Python, C++ or Fortran). An innovative mindset
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to international research networks and collaboration. Advanced x-ray and neutron scattering methods are central tools within several ongoing projects. The division consists of researchers with broad and