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one of tha main contributor to the In-situ X-ray diffraction experiments performed for studying the formation of new silicides using both large volume presses such as multi-anvil and Paris-Edinburgh
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by Professor Trevor Forsyth. The group uses biophysical techniques to study biomolecular systems in crystals, solutions and partially ordered systems. Particular use is made of X-ray and neutron
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, the mechanochemistry of DNA-based motors. We utilize a combination of biochemical, biophysical and structural techniques. (e.g. X-ray crystallography, small-angle X-ray scattering, transmission electron microscopy
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Crystal X-Ray Diffractometer (SCXRD), Powder X-Ray Diffractometer (PXRD), Scanning Electron Microscope (SEM), instrumentation of the Polymer and Nanomaterials Characterization Facility (poluRUN), currently
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will be investigated by high-temperature X-ray microtomography under variable cooling rates and volatile contents. The resulting data will be used to model lava viscosity and rheological evolution in
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Knowledge of (or willingness to learn about) automation and robotics for crystallization Demonstrated experience in a broad range of X-ray crystallography methods, such as crystallization screening
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Knowledge of (or willingness to learn about) automation and robotics for crystallization Demonstrated experience in a broad range of X-ray crystallography methods, such as crystallization screening
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of stabilization or leaching of trace metals in slag. To this end, various chemical, mineralogical, and structural characterization techniques will be used: LA-ICP-MS, HT-XRD, XRF, X-ray absorption spectroscopy
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-crystal X-ray diffraction), and mass spectrometry. Thermal behaviour will be assessed using differential scanning calorimetry (DSC) and thermogravimetric analysis (TGA), complemented by mass spectrometric
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specific expertise that combines several of the following: Organic synthesis; Preparation of porous molecular crystals, covalent organic frameworks or metal-organic frameworks; X-ray crystallography (both