Li Si, Li Na-Na, Dong Xi-Yan, Zang Shuang-Quan, Mak Thomas C W
College of Chemistry, Zhengzhou University, Zhengzhou 450001, China.
College of Chemistry and Chemical Engineering, Henan Polytechnic University, Jiaozuo 454000, China.
Chem Rev. 2024 Jun 12;124(11):7262-7378. doi: 10.1021/acs.chemrev.3c00896. Epub 2024 May 2.
Ligand-protected metal clusters possess hybrid properties that seamlessly combine an inorganic core with an organic ligand shell, imparting them exceptional chemical flexibility and unlocking remarkable application potential in diverse fields. Leveraging chemical flexibility to expand the library of available materials and stimulate the development of new functionalities is becoming an increasingly pressing requirement. This Review focuses on the origin of chemical flexibility from the structural analysis, including intra-cluster bonding, inter-cluster interactions, cluster-environments interactions, metal-to-ligand ratios, and thermodynamic effects. In the introduction, we briefly outline the development of metal clusters and explain the differences and commonalities of M(I)/M(I/0) coinage metal clusters. Additionally, we distinguish the bonding characteristics of metal atoms in the inorganic core, which give rise to their distinct chemical flexibility. Section 2 delves into the structural analysis, bonding categories, and thermodynamic theories related to metal clusters. In the following sections 3 to 7, we primarily elucidate the mechanisms that trigger chemical flexibility, the dynamic processes in transformation, the resultant alterations in structure, and the ensuing modifications in physical-chemical properties. Section 8 presents the notable applications that have emerged from utilizing metal clusters and their assemblies. Finally, in section 9, we discuss future challenges and opportunities within this area.
配体保护的金属簇具有混合特性,能将无机核心与有机配体壳层无缝结合,赋予它们非凡的化学灵活性,并在不同领域展现出巨大的应用潜力。利用化学灵活性来扩充可用材料库并推动新功能的开发,正成为一项日益紧迫的需求。本综述聚焦于从结构分析角度探讨化学灵活性的起源,包括簇内键合、簇间相互作用、簇与环境的相互作用、金属与配体比例以及热力学效应。在引言部分,我们简要概述了金属簇的发展历程,并解释了M(I)/M(I/0) 货币金属簇的差异与共性。此外,我们区分了无机核心中金属原子的键合特征,正是这些特征赋予了它们独特的化学灵活性。第2节深入探讨了与金属簇相关的结构分析、键合类别和热力学理论。在接下来的第3至7节中,我们主要阐明引发化学灵活性的机制、转化过程中的动态变化、由此导致的结构改变以及随之而来的物理化学性质的变化。第8节介绍了利用金属簇及其组装体所产生的显著应用。最后,在第9节中,我们讨论了该领域未来面临的挑战与机遇。