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通过限制作用,穴状配体的流动性对其催化活性可能产生的影响。

Possible effects of fluxionality of a cavitand on its catalytic activity through confinement.

作者信息

Pal Ranita, Chattaraj Pratim Kumar

机构信息

Advanced Technology Development Centre, Indian Institute of Technology Kharagpur, 721302, India.

出版信息

Phys Chem Chem Phys. 2021 Aug 4;23(30):15817-15834. doi: 10.1039/d1cp01826d.

Abstract

The discovery of fullerenes was a huge milestone in the scientific community, and with it came the urge to discover and analyze various small and large atomic and molecular clusters having a cavity. These cavitands of varied shapes and sizes have wide applications in the encapsulation of rare gas atoms to induce bond formation between them, storage of hydrogen and hydrocarbons to be used as alternative sources of fuel, catalyzation of otherwise slow reactions without using a catalyst, activation of small gas molecules, etc. Various cavitands like fullerenes, [ExBox]4+, cucurbit[n]urils, borospherenes, octa acid, etc. have been used for this purpose. Some clusters including cavitands exhibit fluxional behaviour. Systems in a confined environment often manifest interesting variations in their properties and behaviour, compared to their unconfined counterparts, facilitating the aforementioned applications. In this perspective article, we explore the possibility of making use of this extra degree of freedom, viz., the fluxionality, in changing the catalytic activity of the cavitand.

摘要

富勒烯的发现是科学界的一个巨大里程碑,随之而来的是发现和分析各种具有空腔的大小原子和分子团簇的热潮。这些形状和大小各异的空穴体在封装稀有气体原子以诱导它们之间形成化学键、储存用作替代燃料源的氢和碳氢化合物、在不使用催化剂的情况下催化原本缓慢的反应、活化小气体分子等方面有广泛应用。各种空穴体,如富勒烯、[ExBox]4+、葫芦[n]脲、硼球烯、八元酸等,都已用于此目的。包括空穴体在内的一些团簇表现出分子流动行为。与无限制环境中的系统相比,受限环境中的系统在其性质和行为上往往表现出有趣的变化,这促进了上述应用。在这篇观点文章中,我们探讨了利用这种额外的自由度,即分子流动性,来改变空穴体催化活性的可能性。

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