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stereolithographic 3D printing techniques and characterization of carbon materials, namely by thermogravimetry, SEM, TEM, Raman, elemental analysis, among other relevant techniques; 4) Possess experience in
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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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particle geometry in three dimensions using slice-and-view FIB-SEM analysis. Determining mineralogical and chemical properties (composition, zoning, crystallographic orientation) using complementary electron
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-film deposition and characterization equipment (ALD, PECVD, ellipsometry, optical microscopes, SEM, AFM, Raman spectroscopy) Planning and implementing thin-film deposition processes and analysing
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independently and in a team A creative, critical, analytical and innovative mindset Experience as a researcher or in industry is a plus Hands on experience with any of the following is an advantage: SEM, TEM, XRD
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Experience as a researcher or in industry is a plus Hands on experience with any of the following is an advantage: SEM, TEM, XRD, FTIR, TGA, DSC, NMR; Deep eutectic solvents; Plaster materials; Building
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in-house, BSL2-approved cryo-EM facility including e.g. an Aquilos 2 FIB-SEM and Titan Krios cryo-TEM. The fellowship is for two years and is placed at the Department of Medical Biochemistry and
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work includes https://doi.org/10.1101/2025.0... and https://doi.org/10.64898/2025.... Profile You have: A PhD in structural biology, cell biology, biophysics, bioengineering, or a related
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mechanisms. Conduct materials and interfacial characterization using appropriate techniques (e.g., XRD, SEM/TEM, XPS, Raman/FTIR, DSC/TGA), and correlate structure–property–performance relationships. Develop
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integrated alpha radiation sources Performing post-mortem analyses (electron microscopy e.g. EPMA, SEM, and X-ray methods e.g. µCT, XRD) Preparing and evaluating solution analyses using ICP MS/OES Publishing