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chemistry and flexibility in molecular crystals. You will undertake original research spanning molecular synthesis, crystal growth and advanced characterisation, while building experience in diffraction
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processing and phase transformation. The candidate will work with experimental datasets from techniques such as electron microscopy, EBSD, X-ray diffraction, X-ray imaging and in situ characterisation
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materials characterisation and modelling. Techniques may include thermogravimetric analysis, in situ X-ray diffraction, SEM, EBSD, image analysis, thermodynamic calculations and kinetic modelling. The aim is
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and biophysical characterisation, drug discovery, magnetic resonance, vibrational and X-ray spectroscopy, X-ray diffraction as well as X-ray and light scattering. We aim to provide expert technical
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them The Opportunity The Monash X-ray Platform (MXP) is an ISO 9001-certified, open-access research facility and one of Australia’s largest in-house X-ray facilities, providing advanced X-ray diffraction
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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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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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diffraction, electron microscopy, spectroscopy or surface analysis. Ability to design experiments, analyse complex datasets and interpret electrochemical and materials-characterisation results. Evidence of
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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
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mechatronics, advanced electronics, spacecraft engineering, and data science to achieve astrometric measurements at unprecedented levels of precision. To accomplish this, a unique optical system has been