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

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 (PW12O403−, SiW12O404− and BW12O405−), our findings reveal that the lowest-charged POM, namely PW12O403− spontaneously confines within the wider rim of γ-CD, but BW12O405− does not exhibit this behaviour. This striking affinity for the hydrophobic pocket of γ-CD originates from the structural characteristics of water molecules surrounding PW12O403−. Moreover, through validation using 31P 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 PW11MoO403−.

Document Type

Article


Published version

Language

English

CDU Subject

Subject

Química

Pages

9 p.

Publisher

Royal Society of Chemistry

Grant Agreement Number

ICIQ-CERCA Programme/Generalitat de Catalunya

MICINN (PID2020-112806RB-I00, CEX2019-000925-S)

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Rights

CC-BY-NC 4.0

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Papers [1286]