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analysis. Main Tasks and responsibilities: · Operate and optimize advanced STEM and FIB instrumentation for the nanoscale analysis of catalytic and energy-related nanomaterials, supporting the development
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electrodes using various electron microscopy techniques (e.g. FIB-SEM); (ii) Reconstruction of the 3D structure through image analysis; (iii) Analysis of images from new and aged membrane-electrode assemblies
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/ Cellular Imaging: Candidates with hands-on experience in cryo-electron microscopy–based methods, including high-resolution single-particle reconstruction and/or cryo-electron tomography with FIB-SEM
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beam (FIB) is preferred Programming proficiency (e.g., Python) for experiment automation and/or image analysis is preferred Background in electronic, magnetic, or optical materials is preferred
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cryo-EM facilities (EMBION) including two Titan-Krios microscopes (K2 and K3), Aquilos2 with iFLM microscope. Upgrade to a new 300 kV microscope and cryo-plasma-FIB dedicated to cryo-ET research is
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-driven micromagnetic computational simulations. Extending MERRILL with a data-driven workflow that incorporates constraints from Quantum Scanning Microscope and slice-and-view FIB-SEM measurements
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or burn-resistant testing demonstrated experience with conducting microstructural characterization techniques such as SEM, TEM, XRD, EDS, EBSD, FIB/SEM etc., as well as physico-mechanical characterization
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for this research. You will have access to a variety of techniques, such as patch-clamp electrophysiology, FIB-SEM volume imaging, tissue clearing (iDISCO), and/or single-cell sequencing. The postdoctoral researcher
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techniques such as SEM, TEM, XRD, EDS, EBSD, FIB/SEM etc., as well as physico-mechanical characterization techniques such as tensile, compression, DSC/TGA, etc. as well as analysis of the data with good
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of friction, wear, tribo-corrosion, and fatigue. Your work will be experimental, and you will have access to one of Europe’s best-equipped tribology laboratories, as well as advanced analysis tools such as FIB