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Field
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programme. Transposable elements (TEs) are defined as mobile genomic DNA sequences and are ubiquitous in all living organisms studied to date. These elements can constitute varying proportions
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catalysis, such as enzymes or polyoxometalates (POMs), will be combined with metal–organic frameworks (MOFs) in order to stabilise and heterogenise these species. The syntheses will be carried out in
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knowledge of numerical methods - knowledge of free-surface flows, granular flows - proven experience in numerical simulation (finite elements, finite volumes, CFD, LES, etc.) - proficiency in basic scientific
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tools • Modeling of devices with the finite element method • Micro-nano fabrication in the IEMN's clean room • Physical / Electrical characterization of devices • Participation in the ANTARES project
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physics, structured around three main axes: Novel electronic states of matter (correlated systems, unconventional superconductivity, magnetism, metal-insulator transitions, etc.) Reduced-dimensionality
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Finite Element Model of the Larva Body: Utilise existing Drosophila larva CT-scan data to segment components such as the cuticle, muscles, and mouth hook. Implement finite element simulations within
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, along with approximately 20 to 22 PhD students and postdoctoral researchers. The laboratory is located at IRCOF in Rouen (CNRS, University, and INSA of Rouen), France. The IRCOF hosts around 60 CNRS
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, and postdoctoral researchers) working at the interface of biology and chemistry. With more than 160 publications since 2001, the team is internationally recognized for its contribution to elucidating
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of solubility of (C-O-H-N-S-P) volatile elements in silicate magma in the exotic Pressure-Temperature-Composition parameter space covered by exoplanetary systems. A priority is given to the solubility of H2 in
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at LTE under the supervision of an assistant astronomer and will also coordinate his/her work with a postdoctoral fellow during part of the thesis. The LTE is a laboratory specialising in the definition