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experimental work and modelling. The former includes the capability for planning and performing experiments using a wide range of techniques including thermogravimetry, mass spectrometry, X-ray scattering, gas
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in biobased nanocomposites subjected to extension using small-angle X-ray scattering (SAXS) and related methods. The work will be carried out in close collaboration with Laboratoire Rhéologie et
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range of cutting-edge tools and techniques, including cryogenic electron microscopy (cryo-EM), single-molecule FRET, small-angle X-ray scattering (SAXS), as well as other biophysical and structural
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. Knowledge, Skills, and Abilities: Knowledge of electron and ion optics. Knowledge of electron scattering, ionization processes, and the physics of X‑ray generation. Knowledge of transmission electron
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, the mechanochemistry of DNA-based motors. We utilize a combination of biochemical, biophysical and structural techniques. (e.g. X-ray crystallography, small-angle X-ray scattering, transmission electron microscopy
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completed in a relevant field of study. Knowledge of x-ray/optical/electron physics, including diffraction, optics, detectors, scattering etc. Experience with deep learning (DL) libraries such as Tensorflow
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project include: Performing advanced studies using state-of-the-art methods in X-ray imaging and scattering and electron microscopy to study porosity, intermetallic inclusions, solute segregates and
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distribution. For ideal sources and optical surfaces we can solve the so-called Monge-Ampère equation to find the freeform shapes of the surfaces. Scattering elements however send light rays in multiple
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biological systems, and study biological and designed proteins using a combination of classical and advanced techniques including optical and NMR spectroscopy, surface plasmon resonance, light and X-ray
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in a vibrant and multidisciplinary and multinational environment (E) Experience in X-ray diffraction/imaging/spectroscopy techniques preferably synchrotron based (D) Experience in raising key issues