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of the project, which may include in-situ mechanical testing, metal forming techniques, investigative techniques including metallography, electron microscopy, electron backscatter diffraction, and tomography
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for understanding natural magmatic processes on earth & other planetary bodies. Neutron diffraction is a powerful technique for studying the atomic scale structure of these materials, but the current technology to
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trials Microstructural characterisation using electron microscopy (SEM & TEM), X-ray diffraction, and differential scanning calorimetry Mechanical performance assessment, including small-scale tensile
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microscopy, diffraction methods (lab-based and synchrotron), mechanical property assessments, and thermo-physical evaluations. Candidate Requirements Applicants should have or expect to obtain a strong
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collection of process relevant data for scalable and reliable MOF synthesis. The resultant MOFs will be fully characterised using a range of analytical techniques including X-ray diffraction, electron
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characterisation techniques including X-ray and electron diffraction, electron microscopy, IR and UV-vis spectroscopies, and gas sorption. This project combines flow and materials chemistry, characterisation, and
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diffraction, and differential scanning calorimetry Mechanical performance assessment, including small-scale tensile testing and in situ testing at Diamond Light Source The studentship is fully funded for 3.5
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-probe spectroscopy is used to follow electron mobility and recombination dynamics on a picosecond to nanosecond timescale. Unfortunately, due to the diffraction limit, the dynamics on a sample are
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also be correlated with the crystallography of the microstructure via electron backscatter diffraction (EBSD). We are seeking a motivated researcher with a passion for metallurgy and materials
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Electron Microscopy (SEM) and X-ray Diffraction (XRD) to determine material crystal structure; low energy deuterium exposure using the DELPHI-II system to introduce D at the near surface regions