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the stability and degradation mechanisms of catalysts under operating conditions, using in situ characterization techniques (Raman spectroscopy, etc.) and post-mortem techniques (SEM, XPS, etc
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spatial resolution and chemical sensitivity to study such buried interfaces and thin films. In this project we will use a novel methodology of scanning electron microscopy (SEM) in combination with energy
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). Primary emphasis is on the Thermo Fisher Helios 5UX DualBeam Focused Ion Beam (FIB), and/or Thermo Fisher Apreo Scanning Electron Microscope (SEM). Secondary emphasis on Transmission Electron Microscopy
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preserving representative physico-chemical mechanisms. Ex situ analyses (SEM, EDX, EBSD, micro-Raman, XPS) will characterize damage and corrosion products. Variable loading and multiphysics modeling
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, including characterization techniques such as SEM, TEM, FIB, XRD, nano-indentation, etc. Experience with analytical/numerical thermal, thermo-mechanical, plastic deformation, and/or multi-physics modeling
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interpret data used to determine mineral chemical and isotopic compositions, including SEM, EPMA, LA-ICP-MS and MC-ICP-MS Experience and Education: Relevant research experience in geochemistry acquired
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material characterisation, including: AFM (including PFM or other nanoscale electromechanical modes) SEM/TEM Confocal microscopy Rheology FTIR, XRD, XPS Evaluate degradation profiles, electroactive behaviour
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techniques such as scanning electron microscopy (SEM), Transmission electron microscopy (TEM) and X-ray diffraction (XRD) to study the materials at the microscale and nanoscale) as well as access to National
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utilise (where necessary), radioactive materials handling facilities, advanced materials characterisation techniques such as scanning electron microscopy (SEM), Transmission electron microscopy (TEM) and X
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field + 2+ years of experience in materials R&D or product development. Hands-on experience with materials characterization (e.g., SEM, XRD, FTIR, mechanical testing). Proficiency in data analysis tools