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多金属氧酸盐在环糊精中的纳米限域效应:结合亲和力的计算研究及反应活性调控的实验验证

Nanoconfinement of polyoxometalates in cyclodextrin: computational inspections of the binding affinity and experimental demonstrations of reactivity modulation.

作者信息

Segado-Centellas Mireia, Falaise Clément, Leclerc Nathalie, Mpacko Priso Gabrielle, Haouas Mohamed, Cadot Emmanuel, Bo Carles

机构信息

Institute of Chemical Research of Catalonia (ICIQ), Barcelona Institute of Science & Technology (BIST) Av. Països Catalans 16 43007 Tarragona Spain.

Institut Lavoisier de Versailles, CNRS, UVSQ, Université Paris-Saclay 45 Avenue des Etats-Unis 78035 Versailles France

出版信息

Chem Sci. 2024 Sep 5;15(38):15849-57. doi: 10.1039/d4sc01949k.

Abstract

Chaotropic polyoxometalates (POMs) form robust host-guest complexes with γ-cyclodextrin (γ-CD), offering promising applications in catalysis, electrochemical energy storage, and nanotechnology. In this article, we provide the first computational insights on the supramolecular binding mechanisms using density-functional theory and classical molecular dynamics simulations. Focusing on the encapsulation of archetypal Keggin-type POMs (PWO , SiWO and BWO ), our findings reveal that the lowest-charged POM, namely PWO spontaneously confines within the wider rim of γ-CD, but BWO does not exhibit this behaviour. This striking affinity for the hydrophobic pocket of γ-CD originates from the structural characteristics of water molecules surrounding PWO . Moreover, through validation using P NMR spectroscopy, we demonstrate that this nanoconfinement regulates drastically the POM reactivity, including its capability to undergo electron transfer and intermolecular metalate Mo/W exchanges. Finally, we exploit this nanoconfinement strategy to isolate the elusive mixed addenda POM PWMoO .

摘要

离液序列高的多金属氧酸盐(POMs)与γ-环糊精(γ-CD)形成稳定的主客体复合物,在催化、电化学储能和纳米技术等领域具有广阔的应用前景。在本文中,我们首次使用密度泛函理论和经典分子动力学模拟对超分子结合机制进行了计算研究。以典型的Keggin型POMs(PWO 、SiWO 和BWO )的包封为重点,我们的研究结果表明,电荷最低的POM,即PWO 会自发地限制在γ-CD较宽的边缘内,但BWO 没有这种行为。对γ-CD疏水口袋的这种显著亲和力源于围绕PWO 的水分子的结构特征。此外,通过使用P NMR光谱进行验证,我们证明这种纳米限制极大地调节了POM的反应活性,包括其进行电子转移和分子间金属酸盐Mo/W交换的能力。最后,我们利用这种纳米限制策略分离出了难以捉摸的混合附加物POM PWMoO 。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/160c/11445840/b6a1b1cf9923/d4sc01949k-f1.jpg

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