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of Oxford. The project will explore the interaction of light with functional materials at the nanoscale, with a particular focus on antiferromagnetic and ferroelectric oxides, nonlinear optical phenomena, and
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of Engineering, with a focus on advanced solid oxide fuel cell (SOFC) modelling, three-dimensional combustion and engine simulation, and AI-assisted modelling approaches for hybrid marine propulsion system
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materials from complex feedstocks to achieve the desired product quality and form. As a part of this team, you will : Apply electrochemical engineering principles to develop processes such as oxide reduction
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, oxidation, smelting with/without vacuum, alloy processing, and recycling studies (55%). • Perform process development, experimental design, materials characterization, and interpretation of metallurgical
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the atomic-scale competition between copper and silicon at grain boundaries and oxide interfaces, delivering atomistic insights directly relevant to improving the recyclability and processability of both
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National Aeronautics and Space Administration (NASA) | Pasadena, California | United States | 20 days ago
chemical ionization). The apparatuses can operate over a range of temperatures and pressures. Research focused on reactions that drive particle and haze formation, radical chemical cycles, and auto-oxidation
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-generation circular steelmaking. Using advanced atomistic modelling techniques, you will unravel the atomic-scale competition between copper and silicon at grain boundaries and oxide interfaces, delivering
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, electrical measurements such as capacitance-voltage analysis are widely used to extract parameters including effective work function, flat-band voltage, effective oxide thickness, and charge or dipole
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an emphasis on: High-temperature processing of metals and oxides for microstructural control; Microstructural and mechanical characterization of the materials developed and processed; Participation in outreach
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agencies. Experimental Research Design, synthesize, and evaluate advanced electrocatalysts (e.g., NiFeMo systems, spinel oxides) and integrate them into seawater electrolyzers, fuel cells, and battery