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Wide-bandgap metal-halide perovskites are key absorbers for next-generation multijunction photovoltaics. Their practical use, however, is still limited by compositional instability, phase
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Halide perovskites are a fascinating class of materials with a wide range of applications in (spin)optoelectronics. Their outstanding optoelectronic properties are strongly influenced by coupling
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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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focuses on advanced light-management strategies for high-efficiency all-perovskite tandem solar cells. Information All-perovskite tandem solar cells have recently achieved record efficiencies above 29
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halide perovskite semiconductors. Fabricate and assemble van der Waals heterostructures combining halide perovskites with transition metal dichalcogenides (TMDs). Investigate their optoelectronic
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fabrication. As a PhD candidate, you will: Synthesize and characterize 2D materials, for instance, layered halide perovskite semiconductors. Fabricate and assemble van der Waals heterostructures combining
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, for green hydrogen production, highly efficient metal halide perovskite-based photovoltaics and, of course, high energy density and safer batteries for e-mobility . You will work in a highly collaborative
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optoelectronic applications, such as hybrid perovskites, MOFs, and materials for energy in general, as well as systems at the interface between life sciences and materials science. The research line has close
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cavity containing a perovskite crystal. The first objective is to characterize the spectral and temporal response of this system near the transition, which is expected to include memory effects and strong
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level or self-assembled into aggregates, - colour centres in wide bandgap semiconductor nanostructures (ZnO, hBN, SiC), - low dimensional hybrid perovskites. We are also studying their coupling