电化学
化学
蒽醌
铁氰化物
电解质
氧化还原
歧化过程
组合化学
水溶液
流动电池
化学工程
无机化学
有机化学
电极
工程类
物理化学
作者
Yan Jing,Evan Wenbo Zhao,Marc‐Antoni Goulet,Meisam Bahari,Eric M. Fell,Shijian Jin,Ali Davoodi,Erlendur Jónsson,Min Wu,Clare P. Grey,Roy G. Gordon,Michael J. Aziz
标识
DOI:10.33774/chemrxiv-2021-x05x1
摘要
Aqueous organic redox flow batteries (AORFBs) offer a safe and potentially inexpensive solution to the problem of storing massive amounts of electricity produced from intermittent renewables. However, molecular decomposition is the major barrier preventing AORFBs from being commercialized. Structural modifications can improve molecular stability at the expense of increased synthetic cost and molecular weight. Utilizing 2,6-dihydroxy-anthraquinone (DHAQ), without further structural modification, we demonstrate that electrochemical regeneration could be a viable route to achieve low-cost, long-lifetime AORFBs. In situ (online) NMR and EPR and complementary electrochemical analyses reveal that decomposition compounds i.e., 2,6-dihydroxy-anthrone (DHA) and its tautomer, 2,6-dihydroxy-anthranol (DHAL), can be converted back to DHAQ in two steps: first DHA(L)2− are oxidized to the dimer (DHA)24− at − 0.32 V vs. SHE by one-electron transfer; subsequently, the (DHA)24− is oxidized to DHAQ2− at +0.57 V vs. SHE by three-electron transfer. Electrochemical regeneration rejuvenates not only DHAQ2−, but also the positive electrolyte – rebalancing the states of charge of both electrolytes without introducing extra ions. We demonstrate the repeated capacity recovery with DHAQ | potassium ferro-/ferricyanide flow battery in basic conditions, and show the approach is also effective for anthraquinone-2,7-disulfonate in acid. Electrochemical regeneration strategies may extend the useful lifetime of many water-soluble organic molecules with anthraquinone core structures in electrochemical cells.
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