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物理有机方法在用于流电池应用的持久、可循环、低电势电解质方面的应用。

Physical Organic Approach to Persistent, Cyclable, Low-Potential Electrolytes for Flow Battery Applications.

机构信息

Joint Center for Energy Storage Research , 9700 S. Cass Avenue, Argonne, Illinois 60439, United States.

Department of Chemistry, University of Michigan , 930 N. University Avenue, Ann Arbor, Michigan 48109, United States.

出版信息

J Am Chem Soc. 2017 Mar 1;139(8):2924-2927. doi: 10.1021/jacs.7b00147. Epub 2017 Feb 21.

Abstract

The deployment of nonaqueous redox flow batteries for grid-scale energy storage has been impeded by a lack of electrolytes that undergo redox events at as low (anolyte) or high (catholyte) potentials as possible while exhibiting the stability and cycling lifetimes necessary for a battery device. Herein, we report a new approach to electrolyte design that uses physical organic tools for the predictive targeting of electrolytes that possess this combination of properties. We apply this approach to the identification of a new pyridinium-based anolyte that undergoes 1e electrochemical charge-discharge cycling at low potential (-1.21 V vs Fc/Fc) to a 95% state-of-charge without detectable capacity loss after 200 cycles.

摘要

用于电网规模储能的非水氧化还原流电池的部署受到阻碍,因为缺乏在尽可能低(阳极电解液)或高(阴极电解液)电位下进行氧化还原反应的电解质,同时表现出电池设备所需的稳定性和循环寿命。在此,我们报告了一种新的电解质设计方法,该方法使用物理有机工具来预测具有这种组合性能的电解质。我们将这种方法应用于一种新的基于吡啶鎓的阳极电解液的鉴定,该电解液在低电位(相对于 Fc/Fc 为-1.21 V)下进行 1e 电化学充放电循环,在 200 次循环后,在 95%的充电状态下没有可检测到的容量损失。

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