Liu Wen-Cheng, Cai Yan-Qing, Xiao Fang-Xing
College of Materials Science and Engineering, Fuzhou University New Campus Minhou Fujian Province 350108 China
School of Advanced Manufacturing, Fuzhou University Jinjiang 362200 PR China.
Chem Sci. 2025 Aug 29. doi: 10.1039/d5sc04478b.
Photoelectrochemical (PEC) water splitting represents a highly promising technology to convert solar energy into clean and renewable chemical fuels. Among the various strategies utilized for customizing photoelectrodes, layer-by-layer (LbL) assembly has emerged as a green, simple, and easily accessible technique for rationally constructing multilayered heterostructures in terms of versatility, flexibility, and atomic-level interface configuration modulation. However, precise design of robust photoelectrodes based on LbL assembly still remains in the exploratory stage. This review comprehensively summarizes the recent advancements in the fabrication of composite multilayer photoanodes LbL assembly, highlighting the LbL assembly construction with diverse substrates (, metal oxides, transition metal sulfides) and building blocks of varying sizes and dimensions (, quantum dots, nanoclusters, nanoparticles, nanosheets). Furthermore, this review underscores the role of these building blocks in extending the light absorption and improving the solar water oxidation performance. Most importantly, the latest endeavors devoted to mediating directional charge transfer routes in artificial PEC systems are specifically summarized. Finally, prospects and challenges of LbL assembly technology in photoelectrode engineering for PEC water splitting are outlined, aiming to inspire innovative strategies for the smart design of composite nanostructured photoelectrodes towards solar energy conversion.
光电化学(PEC)水分解是一种将太阳能转化为清洁可再生化学燃料的极具前景的技术。在用于定制光电极的各种策略中,逐层(LbL)组装已成为一种绿色、简单且易于实现的技术,可在多功能性、灵活性和原子级界面构型调制方面合理构建多层异质结构。然而,基于LbL组装的坚固光电极的精确设计仍处于探索阶段。本综述全面总结了通过LbL组装制备复合多层光阳极的最新进展,重点介绍了使用不同基底(如金属氧化物、过渡金属硫化物)以及不同尺寸和维度的构建单元(如量子点、纳米团簇、纳米颗粒、纳米片)进行的LbL组装构建。此外,本综述强调了这些构建单元在扩展光吸收和提高太阳能水氧化性能方面的作用。最重要的是,特别总结了致力于在人工PEC系统中介导定向电荷转移途径的最新研究成果。最后,概述了LbL组装技术在用于PEC水分解的光电极工程中的前景和挑战,旨在激发创新策略,以智能设计复合纳米结构光电极用于太阳能转换。