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ultrastructural assays to assess: Oxidative stress and mitochondrial function Lysosomal/autophagy flux and waste disposal Inflammatory signalling and complement activation Cell survival, death pathways, and barrier
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for complex oxide materials. You will contribute to the overall direction and success of the project, contributing practical research alongside reporting and dissemination. This job is part of an Advanced
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quantifying inclusion size and morphology and assessing the influence of surface features such as oxides, wire marks, and indents on stress concentrations. These data will inform numerical and analytical models
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dynamics simulations to understand the growth mechanisms of thin films deposited by magnetron sputtering, with or without ion beam assistance (IBAS), particularly for metallic materials (Ag) and oxides (ZnO
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the activity and stability of iridium oxide-based catalysts supported on various materials within a PEM electrolysis cell. Catalyst layers and membrane-electrode assemblies will be prepared and characterized in
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carriers in TiO₂ and SrTiO₃ photo-electrocatalysts, by determining their polaronic mobility, their degree of localization, and the lifetime of intra-gap Ti³⁺ states. In these oxides, charges trap
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step-change in protein-templated synthesis. You will work within a highly skilled, interdisciplinary team of researchers to develop synthesis methods for complex oxide materials. You will contribute
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-deposited oxide films, and covalent or electrostatic functionalization (30%); 3. Build and optimize experimental hardware, including optical excitation and collection paths, microwave and RF delivery (30%); 4
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data relating to biological ageing, inflammation, oxidative stress, metabolic signalling and fibrosis The successful candidate will also be expected to contribute to the formulation and submission
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, particularly to the oxidizing environments generated by the host's immune cells. Reactive oxygen and nitrogen species (ROS/RNS) are classically considered antimicrobial molecules involved in parasite elimination