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Materials science and technology are our passion. With our cutting-edge research, Empa's around 1,100 employees make essential contributions to the well-being of society for a future worth living. Empa is a research institution of the ETH Domain. At Empa’s Centre for X-ray Analytics, we...
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, processes, and releases its client proteins remain elusive due to the complex and dynamic nature of these processes. This doctoral project aims to unravel these mechanisms by combining two cutting-edge
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project aims to unravel these mechanisms by combining two cutting-edge techniques: NMR spectroscopy for atomic-resolution insights in solution Single-molecule FRET for time-resolved, single-molecule
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Your profile You are an open-minded, outgoing, and resilient individual who enjoys connecting with people from all walks of life. You combine empathy with assertiveness and have a natural talent for
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vocational training culture. If you wish to optimally combine work and family life or other personal interests, we are able to support you with our modern employment conditions and the on-site infrastructure
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novel methods of enzymatic nitrogen fixation by repurposing natural metalloenzymes. To achieve this ambitious goal, we will combine computational work (focused on computing electric fields within enzyme
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possibilities and our pronounced vocational training culture. If you wish to optimally combine work and family life or other personal interests, we are able to support you with our modern employment conditions
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electrode with free flow channels. The successful candidate will work on cutting-edge research combining computational modelling with experimental validation. The project involves developing meso- and
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understanding in processes at the electrode-electrolyte interface, which are crucial for developing next-generation flow battery materials. The successful candidate will work on cutting-edge research combining
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established research group at the University of Zürich, focusing on the structural effects of posttranslational modifications within intrinsically disordered proteins. Our work combines biomolecular NMR with