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Published on: May 16, 2014
Stabilizing four-electron zinc-iodine chemistry via glycine hydrochloride additives in eutectic electrolytes
Zhanpeng Sun1, Ziyi Wang1, Jinge Gao1
1Department of Materials Science and Engineering, College of Transportation Engineering, Dalian Maritime University, Dalian, 116026, P. R. China. rxhuang@dlmu.edu.cn.
Abstract:
Zn-I2 batteries are conventionally restricted to the two-electron I2/2I- redox reaction, resulting in a limited voltage window and modest energy density. In this work, we demonstrate that introducing glycine hydrochloride (GH) into a bare eutectic electrolyte (BEE) transforms it into a BEE-GH system that enables reversible four-electron Zn-I2 chemistry. The GH additive modulates the electrolyte coordination environment, suppresses parasitic reactions at the zinc anode, and stabilizes iodine intermediates, thereby broadening the operational voltage window with the high-voltage 2I+/I2 redox couple. Electrochemical evaluations reveal that BEE-GH delivers a high specific capacity of 288 mAh g-1 at 0.5 A g-1, which is much higher than the two-electron BEE electrolyte (92 mAh g-1 at 0.5 A g-1). The BEE-GH electrolyte also maintains excellent capacity retention over 1500 cycles. These findings highlight additive-driven electrolyte engineering as an effective strategy to stabilize both electrodes and unlock high-energy multi-electron iodine chemistry, providing a promising route for next-generation Zn-I2 batteries.
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