Single-crystalline BaxSr1-xTaO2N solid-solution photocatalyst with low defect concentrations for solar-driven water splitting

F Faze Wang (Institute for Aqua Regeneration, Shinshu University, 4-17-1 Wakasato, Nagano-shi, Nagano 380-8553, Japan) M Mamiko Nakabayashi (Institute of Engineering Innovation, School of Engineering) V Vikas Nandal G Gabriel Grötzner R Ryota Shoji H Hiroki Iwaizumi J Junie Jhon M. Vequizo (Institute for Aqua Regeneration) N Naoya Shibata (Institute of Engineering Innovation, School of Engineering) N Naoko Kanome V Verena Streibel W Wenpeng Li (Institute for Aqua Regeneration) H Hiroyuki Matsuzaki K Kazuhiko Seki (Department of Neurophysiology, National Institute of Neuroscience, National Center of Neurology and Psychiatry) I Ian D. Sharp (Walter Schottky Institute and Department of Physics, TUM School of Natural Sciences, Technical University of Munich, Am Coulombwall 4, 85748 Garching, Germany) T Tsuyoshi Takata (Research Initiative for Supra-Materials, Shinshu University, 4-17-1 Wakasato, Nagano-shi, Nagano 380-0928, Japan) T Takashi Hisatomi (Institute for Aqua Regeneration) K Kazunari Domen (Institute for Aqua Regeneration)

Abstract

Abstract Perovskite-type tantalum-based oxynitride photocatalysts are promising candidates for water splitting due to their suitable band positions and extended light absorption beyond 600 nm. However, their associated photocatalytic activities and quantum yields remain relatively low. Here, we show that a nano-sized single-crystalline Ba x Sr 1-x TaO 2 N solid-solution perovskite photocatalyst exhibits state-of-the-art activity in separate oxygen and hydrogen evolution half-reactions. The improved performance is attributed to the nanoscale particle sizes, as well as the reduced defect densities achieved by using a mixed precursor comprising TaS 2 and Ta 3 N 5 . The half-reaction activities can be modulated by applying a post-synthetic high-temperature treatment. Assessments of charge carrier dynamics, in conjunction with a mechanistic kinetic model, reveal that exponential-tail trap states are formed during this post-treatment. Such trap states, present on the photocatalyst surface, facilitate participation of holes during the oxygen evolution reaction. The development of such solid-solution photocatalysts broadens the range of potential materials for solar-driven hydrogen production. In addition, the present findings are expected to enable the selective tuning of bifunctional photocatalysts for either the hydrogen or oxygen evolution reaction.

Article Details

Volume / Issue Vol. 17, Issue 1
Published January 26, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (17)

F

Faze Wang

Institute for Aqua Regeneration, Shinshu University, 4-17-1 Wakasato, Nagano-shi, Nagano 380-8553, Japan

M

Mamiko Nakabayashi

Institute of Engineering Innovation, School of Engineering

V

Vikas Nandal

G

Gabriel Grötzner

R

Ryota Shoji

H

Hiroki Iwaizumi

J

Junie Jhon M. Vequizo

Institute for Aqua Regeneration

N

Naoya Shibata

Institute of Engineering Innovation, School of Engineering

N

Naoko Kanome

V

Verena Streibel

W

Wenpeng Li

Institute for Aqua Regeneration

H

Hiroyuki Matsuzaki

K

Kazuhiko Seki

Department of Neurophysiology, National Institute of Neuroscience, National Center of Neurology and Psychiatry

I

Ian D. Sharp

Walter Schottky Institute and Department of Physics, TUM School of Natural Sciences, Technical University of Munich, Am Coulombwall 4, 85748 Garching, Germany

T

Tsuyoshi Takata

Research Initiative for Supra-Materials, Shinshu University, 4-17-1 Wakasato, Nagano-shi, Nagano 380-0928, Japan

T

Takashi Hisatomi

Institute for Aqua Regeneration

K

Kazunari Domen

Institute for Aqua Regeneration