Du Yuanxin, Li Chengqi, Dai Yali, Yin Haijiao, Zhu Manzhou
Department of Materials Science and Engineering, Centre for Atomic Engineering of Advanced Materials, Key Laboratory of Structure and Functional Regulation of Hybrid Materials of Ministry of Education, Key Laboratory of Functional Inorganic Material Chemistry of Anhui Province, Anhui University, Hefei 230601, China.
Nanoscale Horiz. 2024 Jul 22;9(8):1262-1278. doi: 10.1039/d4nh00197d.
Photocatalysis is a widely recognized green and sustainable technology that can harness inexhaustible solar energy to carry out chemical reactions, offering the opportunity to mitigate environmental issues and the energy crisis. Photocatalysts with wide spectral response and rapid charge transfer capability are crucial for highly efficient photocatalytic activity. Atomically precise metal nanoclusters (NCs), an emerging atomic-level material, have attracted great interests owing to their ultrasmall size, unique atomic stacking, abundant surface active sites, and quantum confinement effect. In particular, the molecule-like discrete electronic energy level endows them with small-band-gap semiconductor behavior, which allows for photoexcitation in order to generate electrons and holes to participate in the photoredox reaction. In addition, metal NCs exhibit strong light-harvesting ability in the wide spectral UV-near IR region, and the diversity of optical absorption properties can be precisely regulated by the composition and structure. These merits make metal NCs ideal candidates for photocatalysis. In this review, the recent advances in atomically-precise metal NCs for photocatalytic application are summarized, including photocatalytic water splitting, CO reduction, organic transformation, photoelectrocatalytic reactions, N fixation and HO production. In addition, the strategy for promoting photostability, charge transfer and separation efficiency of metal NCs is highlighted. Finally, a perspective on the challenges and opportunities for NCs-based photocatalysts is provided.
光催化是一种广泛认可的绿色可持续技术,它可以利用取之不尽的太阳能来进行化学反应,为缓解环境问题和能源危机提供了契机。具有宽光谱响应和快速电荷转移能力的光催化剂对于高效光催化活性至关重要。原子精确的金属纳米团簇(NCs)作为一种新兴的原子级材料,因其超小尺寸、独特的原子堆积、丰富的表面活性位点和量子限域效应而备受关注。特别是,类分子离散电子能级赋予它们小带隙半导体行为,这使得它们能够发生光激发以产生电子和空穴参与光氧化还原反应。此外,金属纳米团簇在宽光谱紫外 - 近红外区域表现出很强的光捕获能力,并且光吸收特性的多样性可以通过组成和结构精确调控。这些优点使金属纳米团簇成为光催化的理想候选材料。在这篇综述中,总结了原子精确的金属纳米团簇在光催化应用方面的最新进展,包括光催化水分解、CO还原、有机转化、光电催化反应、N固定和H₂O₂生成。此外,还强调了提高金属纳米团簇光稳定性、电荷转移和分离效率的策略。最后,对基于纳米团簇的光催化剂面临的挑战和机遇进行了展望。