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to heterogeneous integration based on silicon substrates. This approach combines the strengths of different materials within a single PIC platform. In particular, enhancing silicon platforms with efficient III-V
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economy. As a postdoctoral researcher, you will unravel how silicon suppresses liquid copper infiltration at the atomic scale, using density functional theory-accurate machine-learned potentials and
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Join TU Delft and help enable liquid copper infiltration-resistant steels for a circular economy. As a postdoctoral researcher, you will unravel how silicon suppresses liquid copper infiltration
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. You will work with a team funded by an ERC Advanced proposal to do this using a radical new approach based on silicon nitride ribbon torsional resonators coupled directly via magnetic flux to a
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applications for a Postdoctoral Researcher to join the ALD4TANDEM project, an ambitious research programme developing advanced atomic layer deposition (ALD) technologies for next-generation perovskite-silicon
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deposition (ALD) technologies for next-generation perovskite-silicon tandem solar cells. The position is embedded in the Photovoltaic Materials and Devices (PVMD) group, in close cooperation with TU Delft
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industry, to make the luminescent materials. Targeted materials are Yb³⁺-doped inorganic semiconducting sulphide materials, emitting in the infra-red spectral range, where silicon solar cells have high
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, where silicon solar cells have high conversion efficiency. To successfully develop new luminescent absorber materials, it is crucial that you gain a fundamental understanding of the physical processes