School of Civil and Environmental Engineering, Harbin Institute of Technology (Shenzhen), Shenzhen 518055, China and School of Chemistry, University of St Andrews, St Andrews, KY16 9ST, UK.
Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China.
Chem Soc Rev. 2016 Oct 24;45(21):5951-5984. doi: 10.1039/c5cs00769k.
The development and utilization of solar energy in environmental remediation and water splitting is being intensively studied worldwide. During the past few decades, tremendous efforts have been devoted to developing non-toxic, low-cost, efficient and stable photocatalysts for water splitting and environmental remediation. To date, several hundreds of photocatalysts mainly based on metal oxides, sulfides and (oxy)nitrides with different structures and compositions have been reported. Among them, perovskite oxides and their derivatives (layered perovskite oxides) comprise a large family of semiconductor photocatalysts because of their structural simplicity and flexibility. This review specifically focuses on the general background of perovskite and its related materials, summarizes the recent development of perovskite photocatalysts and their applications in water splitting and environmental remediation, discusses the theoretical modelling and calculation of perovskite photocatalysts and presents the key challenges and perspectives on the research of perovskite photocatalysts.
太阳能在环境修复和水分解中的开发和利用正在全球范围内得到深入研究。在过去的几十年中,人们致力于开发无毒、低成本、高效、稳定的光催化剂,用于水分解和环境修复。迄今为止,已经报道了数百种主要基于金属氧化物、硫化物和(氧)氮化物的具有不同结构和组成的光催化剂。其中,钙钛矿氧化物及其衍生物(层状钙钛矿氧化物)因其结构简单和灵活而构成了一大类半导体光催化剂。本综述特别关注钙钛矿及其相关材料的一般背景,总结了钙钛矿光催化剂的最新发展及其在水分解和环境修复中的应用,讨论了钙钛矿光催化剂的理论建模和计算,并提出了钙钛矿光催化剂研究的关键挑战和展望。