载流子
化学
分解水
光催化
兴奋剂
能量转换效率
纳米
纳米技术
表面电荷
能量转换
电荷(物理)
化学物理
半导体
粒子(生态学)
工作(物理)
载流子寿命
表面工程
纳米颗粒
表面状态
光电子学
化学工程
耗尽区
粒径
高效能源利用
光催化分解水
合理设计
可见光谱
太阳能转换
曲面(拓扑)
有效核电荷
作者
Jing Wang,Jiadong Xiao,Junie Jhon M. Vequizo,Takashi Hisatomi,Mamiko Nakabayashi,Wei Li,Daling Lu,Jingshuai Chen,Naoya Shibata,Akira Yamakata,Kazunari Domen
摘要
Perovskite-type oxynitrides offer a promising route for sustainable solar-to-hydrogen energy conversion via one-step-excitation photocatalytic overall water splitting (OWS). However, insufficient charge carrier lifetimes and sluggish surface reaction kinetics, stemming from inadequate control over bulk and surface properties, have thus far limited photocatalytic efficiency. Herein, we demonstrate that the particle size, defect states, and surface properties of BaTaO2N can be effectively tailored by combining precursor engineering with Mg doping, thereby enhancing its OWS activity. Mg-doped BaTaO2N nanocubes with particle sizes of several tens of nanometers were synthesized, and a solar-to-hydrogen energy conversion efficiency an order of magnitude higher than previously reported for BaTaO2N-based photocatalysts was achieved with optimized IrOx and Cr2O3/Ru loading. Mechanistic studies reveal that the dual effects of Mg, namely, passivating bulk defects and tuning surface properties, give rise to long-lived charge carriers and efficient transfer of these carriers to uniformly distributed cocatalyst sites. This work demonstrates that precursor engineering combined with Mg doping enables rational bulk–surface coregulation in oxynitride photocatalysts, providing design principles for developing efficient visible-light-driven OWS systems.
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