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to conduct research for the QUP experimental projects with the Principal Investigators. An overview of the QUP research, including the relationship between the projects, can be found at: https://www2.kek.jp
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chromatographic techniques such as column chromatography and thin-layer chromatography (TLC), as well as molecular identification techniques, namely mass spectrometry, FTIR-ATR spectroscopy, UV-Vis
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, is considered a merit. Experience with biophysical and structural characterisation techniques, such as X-ray scattering, FTIR spectroscopy, confocal microscopy or electrochemical methods, including
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the BioVolt project, a collaborative effort between the Chemistry and Biology of Metals Laboratory (https://irig.cea.fr ) and the Laboratory of Electrochemistry and Physical-Chemistry of Materials and
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adaptive integration methods designed to accelerate atomistic simulations. The approach to be developed will initially integrate spectroscopy data (XPS, SAX, SXRD) to generate candidate structures for S-S
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of both basic and clinical research are of special interest, particularly those that make use of mass spectroscopy-based approaches, advanced organoid models or single-cell/spatial —omics and bioinformatic
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ultra-high-field imaging technologies, including the forthcoming 18.8 Tesla MRI platform, and contribute to the development of multimodal imaging workflows integrating MRI, NMR spectroscopy, optical
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-ion solvation structure, solid electrolyte interphase (SEI) composition, and deposition kinetics. The project combines electrochemistry, spectroscopy, and interfacial science to identify the key
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on the synthesis and spectroscopy of colloidal inorganic nanomaterials, particularly binary and ternary transition metal oxides, chalcogenides, and pnictides. Research topics range from developing new synthetic
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and biosensors using microscopic techniques. Measure properties with force spectroscopy. Apply magnetic force microscopy (MFM). Use Kelvin probe force microscopy (KPFM). Execute AFM assays in liquid