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Quasi-Large Hole Polarons in BiVO4-Implications for Photocatalysis and Solar Energy Conversion
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Quasi-Large Hole Polarons in BiVO4-Implications for Photocatalysis and Solar Energy Conversion
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Bismuth vanadate (BiVO4 BVO) is a promising photocatalyst for solar energy conversion, but its efficiency is limited by small polaron formation. However, some physical properties of BVO deviate from typical small polaron behavior. Using the state-of-the-art first-principles calculations, we demonstrate that BVO forms a quasi-large hole polaron with a radius around 2 nm, resembling free carriers with high mobility. This polaron is stabilized primarily by acoustic phonon modes, creating a shallow trap state near the valence band maximum, which prolongs its lifetime. Simultaneously, it retains a redox potential comparable to that of free carriers. We propose that such large polarons explain the superior properties of BVO and other transition metal oxide photocatalysts. Tuning phonon modes to stabilize large polarons offers a promising strategy for designing materials with enhanced solar energy conversion efficiency.
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Cited by 1 Pith paper
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Interplay between Electronic Structure, Chemical Bonding, and Lattice Symmetry in Bismuth Vanadate
Exact exchange and SOC stabilize monoclinic BiVO4 via oxygen-site charge transfer suppressed by self-interaction error, enabling accurate band-structure and gap predictions once excitonic and thermal corrections are included.
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