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Computational design of molecules for an all-quinone redox flow battery

机译:全醌氧化还原液流电池的分子计算设计

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摘要

Inspired by the electron transfer properties of quinones in biological systems, we recently showed that quinones are also very promising electroactive materials for stationary energy storage applications. Due to the practically infinite chemical space of organic molecules, the discovery of additional quinones or other redox-active organic molecules for energy storage applications is an open field of inquiry. Here, we introduce a high-throughput computational screening approach that we applied to an accelerated study of a total of 1710 quinone (Q) and hydroquinone (QH2) (i.e., two-electron two-proton) redox couples. We identified the promising candidates for both the negative and positive sides of organic-based aqueous flow batteries, thus enabling an all-quinone battery. To further aid the development of additional interesting electroactive small molecules we also provide emerging quantitative structure-property relationships.
机译:受醌在生物系统中的电子转移特性的启发,我们最近表明,醌也是用于固定式能量存储应用的非常有前途的电活性材料。由于有机分子的化学空间实际上是无限的,因此发现用于能量存储应用的其他醌或其他氧化还原活性有机分子是一个有待研究的领域。在这里,我们介绍了一种高通量计算筛选方法,该方法应用于加速研究总共1710个醌(Q)和对苯二酚(QH2)(即两电子二质子)氧化还原对。我们确定了有机水基液流电池负极和正极的有前途的候选者,从而实现了全醌电池。为了进一步帮助开发其他有趣的电活性小分子,我们还提供了新兴的定量结构-性质关系。

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