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arXiv · 2512.08287

Ultrafast light-induced formation of a metastable hidden state in bismuth vanadate

Abstract

Bismuth vanadate (BiVO$_4$) is a key photocatalyst for solar fuel applications, yet fundamental questions remain regarding the nature of photogenerated polaronic states and the lattice dynamics that govern its light-to-chemical pathways. Here, we use femtosecond optical pump-X-ray probe measurements to track the photoinduced electronic and structural dynamics in BiVO$_4$ across multiple length and time scales. Transient X-ray absorption spectroscopy captures sub-picosecond electron localization within VO$_4$ tetrahedra, consistent with small polaron formation, whereas time-resolved X-ray diffraction reveals a slower, multi-picosecond lattice reorganization into a hidden photoexcited state that is structurally distinct from both the monoclinic ground state and the high-temperature tetragonal phase. Supported by density functional theory, we show that hole-lattice interactions dynamically reduce the ground state monoclinic distortion, stabilizing the hidden state. Our results demonstrate that electron- and hole-lattice coupling jointly shape the excited state landscape, with implications for carrier transport, interfacial energetics, and light-to-chemical energy conversion pathways.

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Viktoria F. Kunzelmann, Verena Streibel, Philip Schwinghammer, Philipp Kollenz, Burak Guzelturk, Franziska S. Hegner, Lissa Eyre, Frederico P. Delgado, Tsedenia A. Zewdie, Markus W. Heindl, Danyellen D. Monteiro Galindo, Daniel Sandner, Guanda Zhou, Elise Sirotti, Stanislav Bodnar, Yifeng Jiang, Yohei Uemura, Tobias Eklund, Frederico Lima, Xinchao Huang, Doriana Vinci, Fernando Ardana Lamas, Peter Zalden, Hristo Iglev, David A. Egger, Felix Deschler, Ian D. Sharp. 2025-12-09. Ultrafast light-induced formation of a metastable hidden state in bismuth vanadate. https://arxiv.org/abs/2512.08287

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