光催化
分解水
双功能
析氧
材料科学
氢
载流子
光催化分解水
钙钛矿(结构)
氧气
吸收(声学)
光化学
制氢
纳米技术
催化作用
可见光谱
化学物理
纳米尺度
化学工程
带隙
航程(航空)
粒子(生态学)
电荷(物理)
表面电荷
量子效率
无机化学
作者
Faze Wang,Mamiko Nakabayashi,Vikas Nandal,Gabriel Grötzner,Ryota Shoji,Hiroki Iwaizumi,Junie Jhon M. Vequizo,Naoya Shibata,Naoko Kanome,Verena Streibel,Wenpeng Li,Hiroyuki Matsuzaki,Kazuhiko Seki,Ian Sharp,Tsuyoshi Takata,Takashi Hisatomi,Kazunari Domen
标识
DOI:10.1038/s41467-026-68848-9
摘要
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.
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