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探索金属有机框架薄膜中连续氧化还原事件的影响:一种吸光测定法。

Exploring the Impact of Successive Redox Events in Thin Films of Metal-Organic Frameworks: An Absorptiometric Approach.

作者信息

Monnier Vincent, Odobel Fabrice, Diring Stéphane

机构信息

Nantes Université, CNRS, CEISAM, UMR 6230, F-44000 Nantes, France.

出版信息

J Am Chem Soc. 2023 Sep 6;145(35):19232-19242. doi: 10.1021/jacs.3c04114. Epub 2023 Aug 24.

Abstract

Metal-organic frameworks (MOFs) featuring redox activity are highly appealing for electrocatalytic or charge accumulation applications. An important aspect in this field is the ability to address as many redox centers as possible in the material by an efficient diffusion of charges. Herein, we investigate for the first time the charge diffusion processes occurring upon two sequential one-electron reductions in an MOF thin film. Two pyrazolate-zinc(II)-based MOFs including highly electro-deficient perylene diimide (PDI) ligands were grown on conducting substrates, affording thin films with double -type electrochromic properties as characterized by spectroelectrochemical analysis. In depth electrochemical and chronoabsorptiometric investigations were carried out to probe the charge diffusion in the MOF layers and highlighted significant differences in terms of diffusion kinetics and material stability between the first and second successive reduction of the redox-active PDI linkers. Our results show that MOFs based on multiredox centers are more sensitive to encumbrance-related issues than their monoredox analogues in the context of electrochemical applications, an observation that further underlines the fundamental aspect of careful pore dimensions toward efficient and fast ion diffusion.

摘要

具有氧化还原活性的金属有机框架材料(MOFs)在电催化或电荷积累应用中极具吸引力。该领域的一个重要方面是通过电荷的有效扩散来处理材料中尽可能多的氧化还原中心的能力。在此,我们首次研究了MOF薄膜中连续两次单电子还原时发生的电荷扩散过程。两种基于吡唑盐 - 锌(II)的MOFs,其中包含高度缺电子的苝二酰亚胺(PDI)配体,生长在导电基底上,通过光谱电化学分析表征,得到具有双型电致变色特性的薄膜。进行了深入的电化学和计时吸收测量研究,以探测MOF层中的电荷扩散,并突出了氧化还原活性PDI连接体第一次和第二次连续还原在扩散动力学和材料稳定性方面的显著差异。我们的结果表明,在电化学应用背景下,基于多氧化还原中心的MOFs比其单氧化还原类似物对与阻碍相关的问题更敏感,这一观察结果进一步强调了仔细控制孔径尺寸对于高效快速离子扩散的基本重要性。

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