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can generate ultra-relativistic electron beams over centimeter-scale distances thanks to extreme accelerating fields. A key limitation for beam energy is the dephasing between accelerated electrons and
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project involves: 1) Conducting a detailed study of the space-energy effects that disrupt reactivity measurements during beam interruptions by performing novel measurements during source transients
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project involves: 1) Conducting a detailed study of the space-energy effects that disrupt reactivity measurements during beam interruptions by performing novel measurements during source transients
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energy consumption. The demonstration of high-power energy recovery (exceeding 1 MW), particularly for high currents, remains a major challenge. It requires detailed simulations of beam dynamics o study
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calorimeter for the future FCC-ee ALLEGRO detector, with simulation studies and hands-on work on the early prototypes of this detector. Depending on time and interest, the candidate could also contribute
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CNRS, LAPTh Position ID: CNRS-LAPTh-PD_ENIGMASS_2026 [#31672] Position Title: Position Type: Postdoctoral Position Location: Annecy, Rhone-Alpes 74940, France [map ] Subject Area: High-Energy Theory
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Description The selected candidate will join the team studying the signaling pathways responsible for the assembly of nuclear pore complexes during the cell cycle in healthy and diseased cells, in
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facility), result analysis (R-studio, with the help of the Bioinformat'IC facility), functional studies by cell culture, Aurora spectral cytometry, MSD analyte dosage, immunofluorescence, and modulating
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FieldPhysicsYears of Research ExperienceNone Additional Information Eligibility criteria The candidate must hold a PhD (or equivalent) and have completed a course of study in high-frequency electronics. Skills in
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the Geomicrobiology and Physics of Natural Sites teams of the IPGP and is conducted in collaboration with the "Evolutionary Biology of the Microbial Cell" team of the Institut Pasteur. Position of responsibility