Department of Chemistry, University of Texas at San Antonio, One UTSA Circle, San Antonio, TX, 78249-0698, USA.
MOE Key Laboratory of Bioinorganic and Synthetic Chemistry, School of Chemistry, Sun Yat-Sen University, Guangzhou, 510006, China.
Adv Sci (Weinh). 2022 Jan;9(1):e2104234. doi: 10.1002/advs.202104234. Epub 2021 Nov 26.
Cyanide is the simplest ligand with strong basicity to construct open frameworks including some of the oldest compounds reported in the history of coordination chemistry. Cyanide can form numerous cyanometallates with different transition metal ions showing diverse geometries. Rational design of robust extended networks is enabled by the strong bonding nature and high directionality of cyanide ligand. By virtue of a combination of cyanometallates and/or organic linkers, multifunctional framework materials can be targeted and readily synthesized for various applications, ranging from molecular adsorptions/separations to energy conversion and storage, and spin-crossover materials. External guest- and stimuli-responsive behaviors in cyanide-based materials are also highlighted for the development of the next-generation smart materials. In this review, an overview of the recent progress of cyanide-based multifunctional materials is presented to demonstrate the great potential of cyanide ligands in the development of modern coordination chemistry and material science.
氰化物是最简单的强碱性配体,可用于构建开放式骨架,其中包括配位化学史上最早报道的一些化合物。氰化物可以与不同的过渡金属离子形成众多的氰合金属配合物,呈现出不同的几何形状。氰化物配体的强键合性质和高方向性使设计坚固的扩展网络成为可能。通过氰合金属配合物和/或有机连接物的组合,可以靶向多功能框架材料,并易于合成,以满足各种应用的需求,从分子吸附/分离到能量转换和存储,以及自旋交叉材料。还强调了氰化物基材料中的外部客体和刺激响应行为,以开发下一代智能材料。在这篇综述中,介绍了基于氰化物的多功能材料的最新进展,以展示氰化物配体在现代配位化学和材料科学发展中的巨大潜力。