Stability and bandgaps of layered perovskites for one- and two-photon water splitting

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Abstract

Direct production of hydrogen from water and sunlight requires stable and abundantly available semiconductors with well positioned band edges relative to the water red-ox potentials. We have used density functional theory (DFT) calculations to investigate 300 oxides and oxynitrides in the Ruddlesden-Popper phase of the layered perovskite structure. Based on screening criteria for the stability, bandgaps and band edge positions, we suggest 20 new materials for the light harvesting photo-electrode of a one-photon water splitting device and 5 anode materials for a two-photon device with silicon as photo-cathode. In addition, we explore a simple rule relating the bandgap of the perovskite to the number of octahedra in the layered structure and the B-metal ion. Finally, the quality of the GLLB-SC potential used to obtain the bandgaps, including the derivative discontinuity, is validated against G0W0@LDA gaps for 20 previously identified oxides and oxynitrides in the cubic perovskite structure. © IOP Publishing and Deutsche Physikalische Gesellschaft.

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Castelli, I. E., García-Lastra, J. M., Hüser, F., Thygesen, K. S., & Jacobsen, K. W. (2013). Stability and bandgaps of layered perovskites for one- and two-photon water splitting. New Journal of Physics, 15. https://doi.org/10.1088/1367-2630/15/10/105026

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