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氧化还原响应型卤键作为电化学分离的高选择性相互作用

Redox-Responsive Halogen Bonding as a Highly Selective Interaction for Electrochemical Separations.

作者信息

Kim Nayeong, Jeyaraj Vijaya S, Elbert Johannes, Seo Sung Jin, Mironenko Alexander V, Su Xiao

机构信息

Department of Chemical and Biomolecular Engineering, University of Illinois Urbana-Champaign, 600 S Mathews Ave., Urbana, Illinois 61801, United States.

出版信息

JACS Au. 2024 Jun 10;4(7):2523-2538. doi: 10.1021/jacsau.4c00265. eCollection 2024 Jul 22.

DOI:10.1021/jacsau.4c00265
PMID:39055153
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11267542/
Abstract

Leveraging specific noncovalent interactions can broaden the mechanims for selective electrochemical separations beyond solely electrostatic interactions. Here, we explore redox-responsive halogen bonding (XB) for selective electrosorption in nonaqueous media, by taking advantage of directional interactions of XB alongisde a cooperative and synergistic ferrocene redox-center. We designed and evaluated a new redox-active XB donor polymer, poly(5-iodo-4-ferrocenyl-1-(4-vinylbenzyl)-1-1,2,3-triazole) (P(FcTS-I)), for the electrochemically switchable binding and release of target organic and inorganic ions at a heterogeneous interface. Under applied potential, the oxidized ferrocene amplifies the halogen binding site, leading to significantly enhanced uptake and selectivity towards key inorganic and organic species, including chloride, bisulfate, and benzenesulfonate, compared to the open-circuit potential or the hydrogen bonding donor analog. Density functional theory calculations, as well as spectroscopic analysis, offer mechanistic insight into the degree of amplification of σ-holes at a molecular level, with selectivity modulated by charge transfer and dispersion interactions. Our work highlights the potential of XB in selective electrosorption by uniquely leveraging noncovalent interactions for redox-mediated electrochemical separations.

摘要

利用特定的非共价相互作用可以拓宽选择性电化学分离的机制,使其不仅仅局限于静电相互作用。在此,我们通过利用卤键(XB)的定向相互作用以及协同的二茂铁氧化还原中心,探索了非水介质中用于选择性电吸附的氧化还原响应卤键。我们设计并评估了一种新型的氧化还原活性XB供体聚合物,聚(5-碘-4-二茂铁基-1-(4-乙烯基苄基)-1,2,3-三唑)(P(FcTS-I)),用于在异质界面上对目标有机和无机离子进行电化学可切换的结合和释放。在施加电势下,氧化的二茂铁会扩大卤键结合位点,与开路电势或氢键供体类似物相比,从而显著提高对关键无机和有机物种(包括氯离子、硫酸氢根离子和苯磺酸根离子)的摄取量和选择性。密度泛函理论计算以及光谱分析在分子水平上为σ-空穴的放大程度提供了机理见解,其选择性由电荷转移和色散相互作用调节。我们的工作突出了卤键在选择性电吸附中的潜力,即通过独特地利用非共价相互作用实现氧化还原介导的电化学分离。

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