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project within the Dutch SolarNL / SolarLab program ( https://www.solarnl.eu ). The project focuses on advanced light-management strategies for high-efficiency all-perovskite tandem solar cells. Information
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for enhanced absorption in tandem solar cells Material growth strategies to reduce parasitic optical losses in e.g. transparent conducting oxides. Advanced spectral management concepts for improved current
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that can interact with human cells and tissues with high spatial and temporal resolution. You will embark on a new project focused on the development of 3D-printed hydrogel bioelectronics for neural
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of applied mathematics, for example mapping out disease processes using single cell data, and using mathematics to simulate gigantic ash plumes after a volcanic eruption. In other words: there is plenty
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to run on this new generation of equipment – which of course includes AI. Meanwhile we are pushing the limits of applied mathematics, for example mapping out disease processes using single cell data, and
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unique expertise in human neuropathology. The team has extensive experience with human tissue, histology, cell culture, microscopy and advanced molecular techniques, including transcriptomic analyses
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mathematics, for example mapping out disease processes using single cell data, and using mathematics to simulate gigantic ash plumes after a volcanic eruption. In other words: there is plenty of room
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the very beginning of life. Are you eager to discover the molecular mechanisms that explain why these first cell divisions in early life are very error-prone? Do you want to develop your skills
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-changing science that improves healthcare from the very beginning of life. Are you eager to discover the molecular mechanisms that explain why these first cell divisions in early life are very error-prone
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adipose tissue-derived secreted factors and extracellular vesicles influence cardiomyocyte metabolism and contractility, and on validating newly identified biomarkers using human stem cell-derived