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超分子策略在受限纳米空间内控制反应性。

Supramolecular Strategies for Controlling Reactivity within Confined Nanospaces.

机构信息

School of Material Science and Technology, Nanjing University of Aeronautics and Astronautics, Nanjing, 211106, China.

The Southern Regional Research Center, Agricultural Research Service, USDA, New Orleans, LA, 70124, USA.

出版信息

Angew Chem Int Ed Engl. 2020 Aug 10;59(33):13712-13721. doi: 10.1002/anie.202000045. Epub 2020 Jun 3.

Abstract

Nanospaces are ubiquitous in the realm of biological systems and are of significant interest among supramolecular chemists. Understanding chemical behavior within nanospaces offers new perspectives on biological phenomena in nature and opens the way to highly unusual and selective forms of catalysis. Supramolecular chemistry exploits weak, yet effective, intermolecular interactions such as hydrogen bonding, metal-ligand coordination, and the hydrophobic effect to assemble nano-sized molecular architectures, providing reactions with remarkable rate acceleration, substrate specificity, and product selectivity. In this minireview, the focus is on the strategies that supramolecular chemists use to emulate the efficiency of biological processes, and elucidating how chemical reactivity is efficiently controlled within well-defined nanospaces. Approaches such as orientation and proximity of substrate, transition-state stabilization, and active-site incorporation will be discussed.

摘要

纳米空间在生物系统中无处不在,在超分子化学家们中间也备受关注。了解纳米空间内的化学行为为我们理解自然界中的生物现象提供了新的视角,并为高度异常和选择性的催化形式开辟了道路。超分子化学利用弱但有效的分子间相互作用,如氢键、金属-配体配位和疏水性,来组装纳米级的分子结构,为反应提供显著的速率加速、底物特异性和产物选择性。在这篇迷你综述中,重点讨论了超分子化学家用来模拟生物过程效率的策略,并阐明了如何在定义良好的纳米空间内有效地控制化学反应性。将讨论底物的取向和接近、过渡态稳定以及活性位点结合等方法。

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