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the objectives and methods of the thesis project with partners and stakeholders by adopting a mixed-methods approach. The recruited person will combine participatory mapping approaches, semi-structured interviews
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work is part of a study of different strategies for manufacturing chiral metal nanoclusters of different sizes, metal compositions and degrees of chirality (intrinsic and induced). The main objective
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the national "Solutions for the Industry of the Future" label. Its objective is to accelerate innovation and promote the development of Industry 4.0 solutions. In the global context of the energy transition and
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PhD on 2D quantum photonics : towards neuromorphic applications with 2D ferroelectrics materials M/F
-of-plane ferroelectric domains. The goal of this PhD is to optically detect, track, and ultimately control the ferroelectric state in such materials. Key objectives include imaging ferroelectric domains in a
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multidisciplinary approaches Context and objectives of the PhD project Type IV secretion systems (T4SSs) are bacterial nanomachines responsible for the transfer of conjugative plasmids and the secretion of effectors
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automorphism groups of certain triangulated categories. Artin–Tits groups are classical objects in group theory and remain poorly understood. The categorical approaches we will use were introduced by Khovanov
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confirmed that different combinations of depth, rugosity, sea surface and bottom temperature, bottom flow speed and turbidity explain the different gorgonian's distribution. The objective of the present
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for manufacturing chiral metal nanoclusters of different sizes, metal compositions and degrees of chirality (intrinsic and induced). The main objective of the work is to adjust the chiral properties in order to
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for manufacturing chiral metal nanoclusters of different sizes, metal compositions and degrees of chirality (intrinsic and induced). The main objective is to use the nanoclusters designed both as multiphoton imaging
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develop internally. At the end of the thesis, we expect to reach these objectives: (i) further understand and optimize the plasma processes to have a better control of the growth of UWBG semiconductors