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Field
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power. This involves the design of fundamentally new alloys by computational methods; production through arc melting, powder metallurgy or additive manufacturing; characterisation using advanced electron
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multiple length scales, combining tools such as electron microscopy, atom probe tomography, X-ray diffraction, and micro-mechanical testing. About the research project Bone is a remarkable material that
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holographic system to enhance spatial resolution and field of view beyond the diffraction limit of spatial light modulators. • Implement advanced vectorial holo-lithography for sub-diffraction writing: Develop
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techniques such as Energy Dispersive X-Ray Spectroscopy (EDX), Backscattered Electron (BSE) imaging, and Selected Area Electron Diffraction (SAED). Extensive experience in processing samples for electron
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phase of the project, electron-transparent specimens will be prepared for TEM examination using plasma focused ion beam milling (FIB), followed by structural, compositional and electronic characterisation
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related field Demonstrated experience with scanning/transmission electron microscopy (S/TEM) and/or diffraction (Lorentz S/TEM experience is a plus) Strong foundation in electronics and devices, including
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properties. Surface characterization will be carried out using techniques such as optical microscopy, scanning electron microscopy (SEM), X-ray photoelectron spectroscopy (XPS), and X-ray diffraction (XRD
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to work in a dynamic and collaborative research team environment. Experience working in and applying safety practices in an industrial/manufacturing workspace or lab. Experience working with electronic
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fluorescence (XRF), x-ray diffraction (XRD), scanning electron microscopy (SEM), and isotope geochemistry Conducting analyses using ICP-MS, ICP-OES, XRF and colorimetric techniques in consultation with
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crystals using either electron or X-ray diffraction techniques. While candidates with experience in structure analysis based on powder diffraction, neutron diffraction, or scattering data will also be