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possess translational symmetry, the role of structure and symmetry in glasses is not established. This research programme involves the development of new x-ray and electron diffraction-based methods
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, structure, defect chemistry, and ionic transport behaviour. Comprehensive materials characterisation will be undertaken using structural, thermal, and electrochemical techniques, including X-ray diffraction
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complementary spectroscopy, diffraction, microscopy and chemical/impurity analysis. The project will explore how Magnox and AGR graphites differ from modern candidate graphite grades, how treatment or recycling
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electron diffraction, imaging and spectroscopy, in collaboration with colleagues performing material syntheis and complementary measurements at partner locations in France and Germany. Optimizing electron
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Peterson). This project combines both theory and experiment. "Geometric-flow across diffraction patterns in 4D scanning transmission electron microscopy” (with Assoc Prof Scott Findlay and Dr Timothy
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of spoken and written English ADDITIONAL SKILLS Experience on advanced electron microscopy, including techniques such advanced electron diffraction, mono-EELS, automated / programmable EM data acquisition
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characterization using TEM techniques such as scanning transmission electron microscopy, convergent beam electron diffraction, electron energy loss spectroscopy, and geometrical phase analysis Investigation
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plasma dynamics in strongly excited materials. A complementary part involves coherent diffractive imaging and holographic techniques for the spatio-temporal characterization of transient laser-induced
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collaborate with various partners in the consortium, including partners working on catalyst synthesis, complementary surface X-ray diffraction, and complementary (in situ) electron microscopy. Secondments
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Dr Alireza Sadri) "Geometric-flow across diffraction patterns in 4D scanning transmission electron microscopy" (with Dr Timothy Petersen and Prof Michael Morgan) "Prospects for atomic-resolution