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-on experience with growth reactors and/or clean-room environment. - Knowledge of structural and/or optical characterization of semiconductors. - Knowledge of numerical simulations will be useful though not
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least one or two of the following core areas: • Experimental spectroscopy or optics. • THz spectroscopy of materials in a cryogenic environment. • Electromagnetism or wave propagation simulation and
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models that account for the dynamics of the actin polymer population in the cell cortex. The analysis will be carried out using probability theory and simulation tools, and will be based on a real effort
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or liquid chromatography, mass spectrometry, optical diagnostics, lasers, IR-UV-Vis spectrometry - Measurements in atmospheric simulation chambers, in reactors coupled with laser-induced fluorescence
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-page cover letter linking your interest in the project to your research experience and skills, (2) a full CV (including a complete list of publications), (3) a copy of your doctoral diploma and (4) two
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spectroscopy analyzes will also be carried out. Microstructural parameters deduced from characterizations performed by partners of the project and electrochemical responses will be simulated using digital twins
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cross-validation and simulation-based checks; document performance and limitations. * Software engineering: contribute maintainable code to laMEG; add unit/integration tests and continuous integration
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primarily focus on one or more of these parts. The successful candidate will develop numerical tools and/or theoretical models to model and simulate the behavior of a group of agents capable of chemical
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‑chemical calculations on organic small molecules and π‑conjugated systems. • Conduct periodic DFT simulations to explore electronic band structures and transport. • Analyse charge transport, thermoelectric
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activities will involve various advanced high-resolution mass spectrometers (Orbitrap, Vocus, …), optical techniques (fluorescence, optical tweezers,…), aerosol flow tubes and an atmospheric simulation chamber