Optoelectronic properties of mixed iodide-bromide perovskites from first-principles computational modeling and experiment
Journal of Physical Chemistry Letters American Chemical Society 13:18 (2022) 4184-4192
Abstract:
Halogen mixing in lead-halide perovskites is an effective route for tuning the band gap in light emission and multijunction solar cell applications. Here we report the effect of halogen mixing on the optoelectronic properties of lead-halide perovskites from theory and experiment. We applied the virtual crystal approximation within density functional theory, the <i>GW</i> approximation, and the Bethe-Salpeter equation to calculate structural, vibrational, and optoelectronic properties for a series of mixed halide perovskites. We separately perform spectroscopic measurements of these properties and analyze the impact of halogen mixing on quasiparticle band gaps, effective masses, absorption coefficients, charge-carrier mobilities, and exciton binding energies. Our joint theoretical-experimental study demonstrates that iodide-bromide mixed-halide perovskites can be modeled as homovalent alloys, and local structural distortions do not play a significant role for the properties of these mixed species. Our study outlines a general theoretical-experimental framework for future investigations of novel chemically mixed systems.Investigation of light鈥搈atter interaction in single vertical nanowires in ordered nanowire arrays
Nanoscale Royal Society of Chemistry (RSC) 14:9 (2022) 3527-3536
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ACS Applied Nano Materials American Chemical Society (ACS) 5:2 (2022) 2075-2086
Nanowire Sensors Facilitate Polarization Sensitive Terahertz Spectroscopy
Institute of Electrical and Electronics Engineers (IEEE) 00 (2022) 1-1
Probing charge transport in heterostructured phase-segregated hybrid perovskite semiconductors with terahertz radiation
Institute of Electrical and Electronics Engineers (IEEE) 00 (2022) 1-1