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the experimental lab (https://www.mathbioleiden.nl/software.html#virtualleaf ). Incorporate detailed insights into the model of the mechanical properties of cell walls based on experiments and small-scale
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halide perovskites with transition metal dichalcogenides (TMDs). Investigate their optoelectronic properties, including excitonic effects and charge carrier dynamics, in high magnetic fields and under
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Computational Fluid Dynamics (CFD) has become indispensable for aerospace design, many important problems—including high-fidelity flow simulations, uncertainty quantification, and multidisciplinary optimization
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contacts working at the front line of quantum computing, and a cross-disciplinary profile that remains rare and in high demand. You will be supervised by Dr Gabriele Liga (https://www.tue.nl/en/research
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further collaborations in the institute and the wider research community. Where you will work The Faculty of Science is a world-class faculty where staff and students work together in a dynamic
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novel computational tools to elucidate these phenomena. This PhD project aims to develop a computational growth and remodeling (G&R) framework to investigate how cartilage microtissue growth dynamics
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, modular and scalable MV converter topologies and control methods based on wide-bandgap (SiC) devices and multilevel or series-connected stages, meeting the dielectric criteria while delivering the dynamic
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materials. This project aims to change this and advance our understanding of the static and dynamic behavior of spins on surfaces and surface spin arrays. These systems, which represent real molecular quantum
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always the start of myelin loss, but that it can be followed by repair (Arafa et al. Science 391, eadr4661, 2026). Neuronal activity contributes to myelin swelling, but the mechanisms and dynamics
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the broader Electromagnetics group. Where to apply Website https://www.academictransfer.com/en/jobs/363377/phd-in-fast-multi-scale-electro… Requirements Specific Requirements A master’s degree (or an equivalent