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Field
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partners, combining theoretical modeling, device design, and ultrafast THz experiments. Project background This project will combine advanced numerical modeling with experimental demonstrations
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suitable learning schemes, and design control policies accordingly. You will use large-scale optimization for the implementation of the obtained results, first using high-fidelity numerical simulations
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on assembling, testing, and validating the prototype inside an SEM. You will compare experimental measurements with numerical predictions to validate the physical models and further optimize the instrument design
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elements should be used to generate the required radiation? how do we generate as many ‘usable’ photons from the plasma as possible? What are the optimal laser and target properties? Project goal The goal
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sustained record of involvement in numerous competitive projects (e.g. more than 100 per year), contracted research and an extensive experience of collaboration and technology transfer to companies (more than
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Belgium. The overall objective of FLEX-SMR is to develop cost-optimal solutions for integrating SMRs into industrial energy systems. In particular, the project investigates how an SMR can be operated
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Systems Engineering (ICE-1), our focus is on developing models and algorithms for simulating and optimizing decentralized, integrated energy systems. These systems are characterized by the high spatial and
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possible? What are the optimal laser and target properties? Project goal The goal of this joint experiment-theory project is to elucidate the properties of beyond-EUV radiating plasmas. The work will entail
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. Numerical diffraction calculations are highly computationally intensive, so efficient parallelizable software implementations are necessary. This research will investigate and develop sophisticated algorithms
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-tuning, or related optimization methods. Experience with cloud infrastructure, MLOps or LLMOps, containerization, or production deployment. Frontend and/or backend development skills. We offer ETH Zurich