Sheikh Arif D, Yadav Hemraj M, Sharma Kirankumar K, Shim Jae Won, Lee Jae-Joon, Ghanem Mohammed A
School of Nanoscience and Biotechnology, Shivaji University, Kolhapur, Maharashtra, 416004, India.
School of Electrical Engineering, Korea University, Seoul, 02481, Republic of South Korea.
Small. 2025 Jul;21(26):e2501570. doi: 10.1002/smll.202501570. Epub 2025 May 8.
Photoelectrochemical (PEC) hydrogen/oxygen generation, CO reduction, and photocatalytic dye degradation offer promising pathways for sustainable energy production and environmental remediation by utilizing solar energy. Perovskite halides, with their exceptional optoelectronic properties, have garnered significant attention in these applications. This review comprehensively reviews recent developments in using perovskite halides for PEC hydrogen and oxygen evolution reactions, CO reduction, and photocatalytic detoxification of water. State-of-the-art achievements in enhancing these performances using various device design engineering and construction strategies for efficient charge transfer in aqueous environments are highlighted. The review continues with the exploration of dimensional/compositional engineering, nanocomposites/heterojunctions, core-shell nanostructures, and functionalization of protective layers to improve the efficiency and water stability of perovskite halides for PEC applications. Furthermore, organic-inorganic, all-inorganic, Pb-free hybrid halide perovskites, metal double halide perovskite, their multilayer nanocomposites, and the tandem configuration of PEC/Perovskite solar cell reported design strategies are reviewed and critically assessed in the context of device performance and durability. Finally, challenges such as material stability, scalability, and toxicological considerations are addressed, alongside future research directions to advance the practical implementation of hybrid perovskite nanomaterials in sustainable energy and environmental applications.
光电化学(PEC)制氢/制氧、CO还原以及光催化染料降解为利用太阳能实现可持续能源生产和环境修复提供了有前景的途径。钙钛矿卤化物凭借其优异的光电性能,在这些应用中受到了广泛关注。本综述全面回顾了利用钙钛矿卤化物进行PEC析氢和析氧反应、CO还原以及水的光催化解毒的最新进展。重点介绍了在水性环境中使用各种器件设计工程和构建策略以实现高效电荷转移来提高这些性能的最新成果。综述接着探讨了维度/组成工程、纳米复合材料/异质结、核壳纳米结构以及保护层功能化,以提高钙钛矿卤化物在PEC应用中的效率和水稳定性。此外,还对有机-无机、全无机、无铅混合卤化物钙钛矿、金属双卤化物钙钛矿、它们的多层纳米复合材料以及PEC/钙钛矿太阳能电池的串联配置所报道的设计策略在器件性能和耐久性方面进行了综述和批判性评估。最后,讨论了材料稳定性、可扩展性和毒理学考量等挑战,以及推进混合钙钛矿纳米材料在可持续能源和环境应用中实际应用的未来研究方向。