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Field
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of lattice structure, dielectric screening, and local symmetry breaking in shaping carrier relaxation, recombination pathways, and spin properties is still under active debate. A central challenge is to
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of this postdoctoral project is to explore the properties of compound nonlocal metasurfaces and develop innovative models and techniques for engineering tightly spaced, multilayered dielectric MSs. The research will
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activities carried out at IEMN. Carry out and monitor cleanroom fabrication steps on GaN materials and heterostructures. Contribute to optical and electron-beam lithography, metal and dielectric deposition
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traditional junction termination extension (JTE) and p-stop with sub-micron trenches (<1 µm) filled with dielectric material (SiO2). This innovation reduces the nominal inter-pixel no-gain width from
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at radiochemical laboratories of PSI, molecular scale investigations of water and proton transport by quasi-elastic neutron scattering QENS at SINQ / PSI, and dielectric characterization of thin clay films at TU
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. For this reason, the research community working on gravitational wave detection is seeking coatings with lower thermal noise. One area of research involves replacing coatings made of amorphous dielectric materials
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-design the power stage and its insulation system for safe MV operation, using FEM analysis of electric-field distribution, dielectric stability, and breakdown to guide topology selection, dv/dt management
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available in our group to work on exploring polymer topology for the advancement of dielectric materials, improving mechanical performance, and understanding fundamental properties of new-to-market materials
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clusters and dielectric nanoparticles from molecular beams to levitated optomechanics. We work on novel tools for quantum sensing, mass spectrometry and biomolecular chemistry. Our team is member of
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on the ultrafast response of dielectric materials driven by intense laser fields. The central goal is to understand how strong laser excitation induces ionization, plasma formation, nonlinear optical effects, and