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and molecular function. The project will build on the MDSPACE image analysis software [2], and its application to characterising VCP/p97 dynamics [3], to analyse cryo‑electron microscopy (cryo-EM
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PhD position: Nanoengineering refractory compositionally complex alloys for extreme conditions (M/F)
will be performed using transmission electron microscopy (TEM) and time-of-flight secondary ion mass spectrometry (TOF-SIMS), providing access to atomic-scale structural and chemical information. Ion
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techniques to assess process outcomes, material quality, and device performance, including optical microscopy, photoluminescence, scanning electron microscopy (SEM), atomic force microscopy (AFM), x-ray
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Description This PhD project aims to develop advanced software solutions for cryo-electron microscopy (cryo-EM) data analysis, modeling conformational heterogeneity, and identifying optimal binding candidates
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biology, microscopy and image analysis, and bioinformatics will be highly considered. Required languages: French and/or English. LanguagesENGLISH LanguagesFRENCH Additional Information Selection process To
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the team's optical and magnetotransport benches to study electronic properties. He will work under the supervision of Matthieu Jamet, head of the 2D spintronics team, as part of the PEPR SPIN TOAST and PEPR
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structural characterization of the corneocyte–lipid interface using state-of-the-art neutron diffraction and neutron reflectometry, combined with advanced optical microscopy approaches. The project is
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of Operating Microelectronic Devices by X-ray Diffraction Microscopy Beamline ID01, at the ESRF is a world leading instrument dedicated to micro- and nano-beam X-ray diffraction imaging experiments. It enables
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contact and thus minimize friction and damage to the surfaces for improved energy efficiency [5,6]. To characterize these different polymer brushes, atomic force microscopy (AFM) is used, which in its
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microscopy, nanosciences, biosensing, and nanobiotechnologies. Jerome Wenger’s group has acquired a wide expertise in the nanoscale control of light fields in plasmonic nanostructures and its application