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SAS), will be used. PhD candidate will acquire a broad range of experimental skills in materials diagnostics (e.g., X-ray diffraction, atomic force microscopy, Raman spectroscopy, and advanced
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/Collaboration in organizational and administrative tasks Contribute to the activities of the research group Where to apply Website https://jobs.tuwien.ac.at/Register/265640?utm_source=Euraxess.ec.europa.eu&utm_
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characterization of organometallic complexes Evaluation of catalytic activity in hydrogenation reactions Mechanistic investigations using NMR, IR spectroscopy, kinetic studies, and DFT calculations The project
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, XAS, XPS, dissolution-NMR, IR spectroscopy and TGA and other related spectroscopy techniques. About UM6P: Located at the heart of the future Green City of Benguerir, Mohammed VI Polytechnic University
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changes of porous material catalysts before, during, and after the reaction using a panoply of characterization techniques such as XRD, N2 adsorption, FESEM, TEM, XAS, XPS, dissolution-NMR, IR spectroscopy
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characterization techniques such as XRD, N2 adsorption, FESEM, TEM, XAS, XPS, dissolution-NMR, IR spectroscopy and TGA and other related spectroscopy techniques such as UV and fluorometer. Skilled in performing
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the reaction using a panoply of characterization techniques such as XRD, N2 adsorption, FESEM, TEM, XAS, XPS, dissolution-NMR, IR spectroscopy and TGA and other related spectroscopy techniques such as UV and
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main responsibilities will be: Design and implementation of a custom confocal laser scanning microscope, optimized for measuring molecular diffusion with fluorescence fluctuation spectroscopy (FFS) by
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electromagnetic modes. These systems are investigated using advanced optical spectroscopy and near-field techniques to access nanoscale optical phenomena beyond the diffraction limit. The research integrates design
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Theory; Computational Physics; X-ray Spectroscopy; Electronic Structure; Ultrafast Dynamics , Condensed Matter Theory , Hard Condensed Matter Theory , High Performance Computing , many-body quantum