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一种用于具有可调氧化还原电导率的氧化还原活性金属有机框架的固溶体方法。

A Solid-Solution Approach for Redox Active Metal-Organic Frameworks with Tunable Redox Conductivity.

作者信息

Mohammad-Pour Gavin S, Hatfield Kendrich O, Fairchild David C, Hernandez-Burgos Kenneth, Rodríguez-López Joaquín, Uribe-Romo Fernando J

出版信息

J Am Chem Soc. 2019 Dec 26;141(51):19978-19982. doi: 10.1021/jacs.9b10639. Epub 2019 Dec 13.

Abstract

Systematically tuning the conductivity of metal-organic frameworks (MOFs) is key to synergizing their attractive synthetic control and porosity with electrochemical attributes useful in energy and sensing technologies. control of charge transfer is possible by exploiting the solid-solution properties of MOFs together with electronic self-exchange enabled by redox pendants. Here we introduce a new strategy for preparing redox-active MOF thin-film electrodes with finely tuned redox pendant content. Varying the ratios of alkyl-ferrocene containing redox-active and inactive links during MOF synthesis enabled the fabrication of electrodes with tunable redox conductivity. The prepared MOF electrodes display maximum electron conductivity of 1.10 mS m, with crystallographic and electrochemical stability upon thousands of redox cycles. Electroanalytical studies demonstrated that the conductivity follows solution-like diffusion-controlled behavior with nonlinear electron diffusion coefficients consistent with charge hopping and percolation models of spatially fixed redox centers. Our studies create new prospects in the design and synthesis of redox-active MOFs with targeted properties for the design of advanced electrochemical devices.

摘要

系统地调节金属有机框架(MOF)的电导率是将其引人注目的合成可控性和孔隙率与能源和传感技术中有用的电化学属性相结合的关键。通过利用MOF的固溶体性质以及氧化还原侧基实现的电子自交换,可以控制电荷转移。在此,我们介绍一种制备具有精细调节的氧化还原侧基含量的氧化还原活性MOF薄膜电极的新策略。在MOF合成过程中改变含烷基二茂铁的氧化还原活性和非活性连接的比例,能够制备出具有可调氧化还原电导率的电极。所制备的MOF电极显示出最大电子电导率为1.10 mS m,在数千次氧化还原循环后具有晶体学和电化学稳定性。电分析研究表明,电导率遵循类似溶液的扩散控制行为,其非线性电子扩散系数与空间固定氧化还原中心的电荷跳跃和渗流模型一致。我们的研究为设计具有靶向性质的氧化还原活性MOF以用于先进电化学装置的设计创造了新前景。

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