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Stable Operation of Aqueous Organic Redox Flow Batteries in Air Atmosphere.

Taoyi KongJun LiuXing ZhouJie XuYihua XieJiawei ChenXianfeng LiYong-Gang Wang
Published in: Angewandte Chemie (International ed. in English) (2023)
As a green route for large-scale energy storage, aqueous organic redox flow batteries (AORFBs) are attracting extensive attention. However, most of the reported AORFBs were operated in an inert atmosphere. Herein, we clarify this issue by using the reported AORFB (i.e., 3, 3'-(9,10-anthraquinone-diyl)bis(3-methylbutanoicacid) (DPivOHAQ)||Ferrocyanide) as an example. We demonstrate that the dissolved O 2 can oxidize the discharged DPivOHAQ in anolyte, leading to capacity-imbalance between anolyte and catholyte. Therefore, this cell shows continuous capacity fading when operated in an air atmosphere. We propose a simple strategy for this challenge, in which the oxygen evolution reaction (OER) in catholyte is employed to balance oxygen reduction reaction (ORR) in anolyte. When using the Ni(OH) 2 -modifed carbon felt (CF) as a current collector for catholyte, this cell shows an excellent stability in air atmosphere because the Ni(OH) 2 -induced OER capacity in catholyte exactly balances the ORR capacity in anolyte. Such O 2 -balance strategy facilitates AORFBs' practical application.
Keyphrases
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