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the introduction of new tools for the analysis of such equations both from the theoretical and numerical point of views. This project will contribute to the development of such methods. This PhD project focuses
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will use a triple and complementary methodology based on : - numerical modelling to develop instrumental models, - space data analysis from planetary exploration missions, - laboratory experiments, using
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liquid environment. 1) Molecular Modeling - Study of interactions between MnO₂ and ionic liquids using Density Functional Theory (DFT) and Reactive Molecular Dynamics (ReaxFF). - Analysis of oxidation
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-of-the-art numerical simulations of the solar corona and wind. - Analysis of remote-sensing observations from e.g. SDO, IRIS, Hinode, Solar Orbiter ; - Collaboration with the CROSSWIND team at LP2CE (PI: Clara
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, and biology) focused on on topic: functional materials. The institute adopts a multidisciplinary approach to address future challenges across numerous fields, including environmental transition, energy
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conditions; (ii) for the development of simplified models for the key combustion and sound-generation processes; (iii) for the validation of high-fidelity numerical simulations performed as part of a second
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monitor its state while in use. It has been of increasing interest for the last decades due to numerous advantages in terms of security, cost, and environmental impacts. Optical fiber sensors are very