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to develop chiral metal nanoclusters, understand their chirality at the atomic level through a combination of advanced spectroscopic techniques and theoretical simulations, and apply them to relevant processes
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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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blades with ceramic matrix composites (CMCs), which combine lightness, thermomechanical strength, and damage tolerance depending on the choice of the various constituents that compose them. Replacing
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including 13 permanent staff, 6 doctoral students, and 3 postdoctoral fellows, in addition to fixed-term contracts and visiting staff. Its activities focus on cutting-edge research in accelerators. The team's
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. It employs approximately 330 people, including 190 permanent staff members (researchers, lecturers, engineers) and approximately 140 doctoral students, postdoctoral fellows, and staff members on fixed
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(zeolite structure, texture, composition) that optimize the properties of the photocatalysts and to demonstrate their efficiency in solar-to-hydrogen conversion. Main missions • Design the setup
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properties, its direct use in high-performance applications remains limited. FLIGHT addresses this gap by developing eco-friendly processes to transform lignin into composites, membranes, and insulation panels
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of an external magnetic field into the phase-field model and to simulate the microstructural evolution for different cooling rates. - Phase-field modeling of the phase transition in the Fe-Ni alloy. The selected
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procedure and composition of the catalysts on the structural characteristics, hence catalytic properties. From the gained knowledge, we will be able to control and tailor the critical properties in order to