Tong Haihang, Li Fang-Fang, Du Minshu, Song Haisheng, Han Bin, Jia Guohua, Xu Xue-Qing, Zou Xingli, Ji Li, Kai Ji-Jung, Hu Zheng, Hsu Hsien-Yi
School of Energy and Environment, Department of Materials Science and Engineering, Centre for Functional Photonics (CFP), City University of Hong Kong, Kowloon Tong, Hong Kong 999077, China.
Shenzhen Research Institute of City University of Hong Kong, Shenzhen 518057, P. R. China.
ACS Appl Mater Interfaces. 2025 Apr 23;17(16):23431-23465. doi: 10.1021/acsami.4c20972. Epub 2025 Apr 10.
Halide perovskites (HPs), renowned for their intriguing optoelectronic properties, such as robust light absorption coefficient, long charge transfer distance, and tunable band structure, have emerged as a focal point in the field of photocatalysis. However, the photocatalytic performance of HPs is still inhibited by rapid charge recombination, insufficient band potential energy, and limited number of surface active sites. To overcome these limitations, the integration of two-dimensional (2D) materials, characterized by shortened charge transfer pathways and expansive surface areas, into HP/2D heterostructures presents a promising avenue to achieve exceptional interfacial properties, including extensive light absorption, efficient charge separation and transfer, energetic redox capacity, and adjustable surface characteristics. Herein, a comprehensive review delving into fundamentals, interfacial engineering, and charge carrier dynamics of HP/2D material heterostructures is presented. Numerous HP/2D material photocatalysts fabricated through diverse strategies and interfacial architectures are systematically described and categorized. More importantly, the enhanced charge carrier dynamics and surface properties of the HP/2D material heterostructures are thoroughly investigated and discussed. Finally, an analysis of the challenges faced in the development of HP/2D photocatalysts, alongside insightful recommendations for potential strategies to overcome these barriers, is provided.
卤化物钙钛矿(HPs)以其引人入胜的光电特性而闻名,如强大的光吸收系数、长电荷转移距离和可调节的能带结构,已成为光催化领域的一个焦点。然而,HPs的光催化性能仍然受到快速电荷复合、能带势能不足和表面活性位点数量有限的抑制。为了克服这些限制,将以缩短电荷转移路径和扩大表面积为特征的二维(2D)材料整合到HP/2D异质结构中,为实现卓越的界面特性提供了一条有前景的途径,这些特性包括广泛的光吸收、高效的电荷分离和转移、能量氧化还原能力以及可调节的表面特性。在此,本文对HP/2D材料异质结构的基本原理、界面工程和电荷载流子动力学进行了全面综述。系统地描述和分类了通过各种策略和界面结构制备的众多HP/2D材料光催化剂。更重要的是,对HP/2D材料异质结构增强的电荷载流子动力学和表面性质进行了深入研究和讨论。最后,分析了HP/2D光催化剂开发中面临的挑战,并针对克服这些障碍的潜在策略提供了有见地的建议。