化学
锌
电池(电)
接口(物质)
流量(数学)
流动电池
化学工程
航天飞机
冶金
光电子学
分析化学(期刊)
锌化合物
电极
锌合金
作者
Wei Wang,Shao-Jian Zhang,Junnan Hao,Qianru Chen,Shi‐Zhang Qiao
摘要
Zinc–bromine (Zn–Br) flow batteries are promising for grid-scale energy storage due to their high safety, low cost, and scalable architecture. However, their application remains constrained by cathode-side polybromide shuttle and anode-side Zn dendrite formation and hydrogen evolution reactions (HER). Here, we propose a bidomain engineering strategy that employs acetylcholine (ACh + ) as a dual-functional electrolyte additive to simultaneously address the challenges of both sides. On the cathode side, the quaternary ammonium group of ACh + complexes with polybromides upon charging to increase their molecular size, thereby effectively inhibiting the polybromide shuttle. On the anode side, the acetyl group of ACh + rapidly absorbs onto the Zn surface to form a water-depleted interface, inducing uniform Zn plating/stripping with suppressed HER. Consequently, the cycling life of Zn–Br flow batteries with a single ACh + additive is extended by nearly 80-fold, from 80 cycles to over 6400 cycles, demonstrating highly durable cycling stability, together with an outstanding cumulative plating capacity of 128 Ah cm –2 . This finding demonstrates that dual-function electrolyte design provides a viable pathway for grid-scale application of high-rate and long-life Zn–Br flow batteries.
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