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配位结构受限空间中的化学转化

Chemical Transformations in Confined Space of Coordination Architectures.

作者信息

Sinha Indranil, Mukherjee Partha Sarathi

机构信息

Department of Inorganic and Physical Chemistry , Indian Institute of Science , Bangalore 560012 , India.

出版信息

Inorg Chem. 2018 Apr 16;57(8):4205-4221. doi: 10.1021/acs.inorgchem.7b03067. Epub 2018 Mar 26.

Abstract

The scholastic significance of supramolecular chemistry continues to grow with the recent development of catalytic transformations in confined space of supramolecular architectures. It has come a long way from a natural cavity containing molecules to modern smart materials capable of manipulating reaction pathways. The rise of self-assembled coordination complexes provided a diverse array of host structures. Starting from purely organic compounds to metalloligand surrogates, supramolecular host cavities were tuned according to the requirement of the reactions. The understanding of their participation in a reaction led to better usage of those assemblies for specific reaction sequences. Commencing from cyclodextrin, a wide range of organic molecules was used for cage-catalyzed organic transformations. However, difficulties in synthesis and a tedious purification procedure led chemists to choose a different pathway of metal-ligand coordination-driven self-assembly. The latter stood out as a potential replacement of the organic cages, overcoming the previous drawbacks. In the glut of different transition-metal assemblies used for catalytic transformations, many of them showed chemo- and stereoselective products. However, the small cavity size in some of them led to premature failure of the reaction. In that context, "molecular barrels" showed good efficacy for the catalytic reaction sequence. The large cavity size and bigger orifice for intake of the substrate and easy release of the product made them a better choice for catalysis. Additionally these are mostly used in aqueous media, which reinforces the idea of green and environmentally nonhazardous chemistry. In this Viewpoint, we discuss the use of metal-ligand coordination-driven self-assembled molecular containers used for catalysis with special emphasis on molecular barrels. This paper built on existing literature provides a thorough development of the fertile ground of the coordination architecture for catalysis and its future direction of propagation.

摘要

随着超分子体系结构受限空间内催化转化的最新发展,超分子化学的学术意义持续增强。从包含分子的天然空腔发展到能够操纵反应路径的现代智能材料,它已经走过了漫长的道路。自组装配位络合物的兴起提供了各种各样的主体结构。从纯有机化合物到金属配体替代物,超分子主体空腔根据反应需求进行了调整。对它们参与反应的理解使得这些组装体能更好地用于特定的反应序列。从环糊精开始,各种各样的有机分子被用于笼状催化有机转化。然而,合成困难和繁琐的纯化程序促使化学家选择金属 - 配体配位驱动的自组装这一不同途径。后者作为有机笼的潜在替代品脱颖而出,克服了先前的缺点。在用于催化转化的大量不同过渡金属组装体中,许多都显示出化学和立体选择性产物。然而,其中一些的小空腔尺寸导致反应过早失败。在这种背景下,“分子桶”对催化反应序列显示出良好的效果。大空腔尺寸、更大的底物摄入孔口以及产物的易于释放使它们成为催化的更好选择。此外,这些大多用于水性介质中,这强化了绿色和环境无害化学的理念。在这一观点中,我们讨论用于催化的金属 - 配体配位驱动的自组装分子容器的使用,特别强调分子桶。本文基于现有文献,全面阐述了用于催化的配位结构这一沃土的发展及其未来的传播方向。

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