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(SEM/TEM), and X-ray diffraction (XRD). Project leadership: Proven ability to manage complex experimental workplans and meet deliverables in a collaborative research environment. Sustainable mindset: A
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photochemical processes. Develop and optimize synthetic methodologies and advanced characterization techniques, including X-ray diffraction, spectroscopy, and microscopy. Mentor undergraduate, graduate, and
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techniques, including X-ray diffraction, XPS, SEM-EDX, and in situ Raman and IR during electrocatalytic experiments. The performance of the selected materials will be investigated in the lab and in a pilot
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synthesised in situ using a state-of-the-art pulsed laser deposition system. Key characterisations include X-ray diffraction for structural properties and temperature-dependent magneto-optical properties
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impedance spectroscopy, thermogravimetry, dilatometry, X-ray diffraction, and scanning electron microscopy—to be used in an electrochemical device for the production of synthetic liquid fuels. 7. Applicable
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synchrotron techniques such as X-ray photoelectron, absorption and fluorescence spectroscopies, and X-ray diffraction will be used for real-time analysis. Measurements will be conducted in controlled
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. · Physical-chemical characterisation of said materials (elemental composition, gas adsorption, IR and UV spectroscopy, X-ray diffraction, TEM, XPS, etc.). · Catalytic evaluation of the prepared materials
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for oxidation and reduction reactions. The research will focus on: Developing synthetic routes to robust new chelating and bifunctional ligands. Employing advanced spectroscopic, electrochemical and X-ray
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for electrocatalysis or lithium insertion. Structural investigation will allow us to determine average crystal structure with use of X-ray diffraction (powder or single crystal), small-angle scattering to determine
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issues) Proficiency in operating and supporting materials science laboratory equipment, such as: X-ray diffraction (XRD) Scanning electron microscopy (SEM) and sample preparation tools Thermal and