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用于受限空间催化的不稳定多金属氧酸盐的腔导向合成

Cavity-Directed Synthesis of Labile Polyoxometalates for Catalysis in Confined Spaces.

作者信息

Liu Cui-Lian, Moussawi Mhamad Aly, Kalandia Givi, Salazar Marcano David E, Shepard William E, Parac-Vogt Tatjana N

机构信息

Department of Chemistry, KU Leuven, Celestijnenlaan 200F, 3001, Leuven, Belgium.

Synchrotron SOLEIL, L'Orme des Merisiers, Départementale 128, 91190, Saint-Aubin, France.

出版信息

Angew Chem Int Ed Engl. 2024 May 6;63(19):e202401940. doi: 10.1002/anie.202401940. Epub 2024 Mar 20.

Abstract

The artificial microenvironments inside coordination cages have gained significant attention for performing enzyme-like catalytic reactions by facilitating the formation of labile and complex molecules through a "ship-in-a-bottle" approach. Despite many fascinating examples, this approach remains scarcely explored in the context of synthesizing metallic clusters such as polyoxometalates (POMs). The development of innovative approaches to control and influence the speciation of POMs in aqueous solutions would greatly advance their applicability and could ultimately lead to the formation of elusive clusters that cannot be synthesized by using traditional methods. In this study, we employ host-guest stabilization within a coordination cage to enable a novel cavity-directed synthesis of labile POMs in aqueous solutions under mild conditions. The elusive Lindqvist [MO] (M=Mo or W) POMs were successfully synthesized at room temperature via the condensation of molybdate or tungstate building blocks within the confined cavity of a robust and water-soluble PtL(NO) coordination cage. Importantly, the encapsulation of these POMs enhances their stability in water, rendering them efficient catalysts for environmentally friendly and selective sulfoxidation reactions using HO as a green oxidant in a pure aqueous medium. The approach developed in this paper offers a means to synthesize and stabilize the otherwise unstable metal-oxo clusters in water, which can broaden the scope of their applications.

摘要

配位笼内的人工微环境通过“瓶中船”方法促进不稳定和复杂分子的形成来进行类酶催化反应,已受到广泛关注。尽管有许多引人入胜的例子,但在合成金属簇(如多金属氧酸盐,POMs)的背景下,这种方法仍几乎未被探索。开发创新方法来控制和影响水溶液中POMs的形态,将极大地推动其应用,并最终可能导致形成用传统方法无法合成的难以捉摸的簇。在本研究中,我们利用配位笼内的主客体稳定作用,在温和条件下实现了水溶液中不稳定POMs的新型腔导向合成。通过在坚固且水溶性的PtL(NO)配位笼的受限腔内使钼酸盐或钨酸盐结构单元缩合,在室温下成功合成了难以捉摸的Lindqvist [MO](M = Mo或W)POMs。重要的是,这些POMs的封装增强了它们在水中的稳定性,使其成为在纯水性介质中使用HO作为绿色氧化剂进行环境友好和选择性硫氧化反应的高效催化剂。本文开发的方法提供了一种在水中合成和稳定原本不稳定的金属氧簇的手段,这可以拓宽它们的应用范围。

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