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22 Jan 2026 Job Information Organisation/Company LSPM , CNRS 3407 Research Field Engineering » Materials engineering Engineering » Mechanical engineering Engineering » Microengineering Physics
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ultrasound, Laboratoire d'imagerie Biomedical, LIB , https://www.lib.upmc.fr/ ) and nanoparticle engineering ( PHENIX Laboratory https://phenix.cnrs.fr/ ). The LIB is located in the Centre de Recherche des
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by the lack of spatial control over their generation. This PhD project will address this by engineering metasurfaces with programmable, spatially localized hot-electron activity. Plasmonic and hybrid
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PROFILE: PhD/ R1: First stage Researcher RESEARCH FIELD(S)1: Engineering MAIN SUB RESEARCH FIELD OR DISCIPLINES1: Engineering JOB /OFFER DESCRIPTION The widespread use of plastic materials has led to a
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are challenging to control in turbulent burners. An alternative investigated in this PhD is the use of porous burner technology. The recirculation of heat within the porous material can stabilize flames at low FAER
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Centre de Mise en Forme des Matériaux (CEMEF) | Sophia Antipolis, Provence Alpes Cote d Azur | France | about 2 months ago
: Doctorat en Mécanique Numérique et Matériaux PHD Country: France Where to apply Website https://www.abg.asso.fr/fr/candidatOffres/show/id_offre/134948 Requirements Specific Requirements Engineering degree
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» Chemical engineering Researcher Profile First Stage Researcher (R1) Positions PhD Positions Application Deadline 30 Apr 2026 - 23:59 (Europe/Paris) Country France Type of Contract Temporary Job Status Full
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with an engineer to deploy controlled experiments and collect well-being dimensions. Activities - Formal modeling of well-being - Implementation of enriched student simulator - Development of multi
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Feb 2026 Is the job funded through the EU Research Framework Programme? Horizon Europe - ERC Is the Job related to staff position within a Research Infrastructure? No Offer Description The PhD student
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. Understanding and controlling how energy is partitioned between hot-carrier generation and heat dissipation remains a central challenge in nanophotonics. This PhD project will address this challenge using two