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-metal bond. In addition to these electronic characteristics, the electronic nature of these assemblies results in marked reactivity with small molecules. In particular, we propose to study in detail
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, we particularly study the activation of small molecules (such as H₂O, CO₂, N₂O) as well as proton-coupled electron transfer processes. The EMPRe team has all the necessary equipment
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, electron microscopy, X-ray diffraction, etc.). Methodology: • Design and synthesize model substrates to measure the activity of enzyme mimics. • Develop analytical methods to detect and quantify chemical
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physicochemical characterization using techniques such as: Powder X-ray diffraction (PXRD), Infrared (IR) spectroscopy, Thermogravimetric analysis (TGA), Gas adsorption measurements, Scanning electron microscopy
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profiles, and by electron microscopies (SEM, TEM) to observe the precipitation and the matrix (martensite, retained austenite) microstructures • Establishing prior austenite grain sizes by crystallographic
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group at C2N. - characterisation of the doping profile and structural properties of the superconducting films and devices using X-ray diffraction (XRD), transmission electron microscopy (TEM), and
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range of state-of-the-art structural biophysics platforms, including nuclear magnetic resonance (NMR), X-ray diffraction, mass spectrometry, electron microscopy, atomic force microscopy, and other
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operando monitoring of solid/solution interfaces. This will be done using advanced characterization techniques such as environmental scanning electron microscopy (ESEM), atomic force microscopy (AFM), Raman
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. Practical experience in electron microscopy and advanced materials characterization is considered a major asset. Furthermore, a strong proficiency in English (minimum CEFR level B2/C1) is required to navigate