4.8 Article

Advanced Buffering Acidic Aqueous Electrolytes for Ultra-Long Life Aqueous Zinc-Ion Batteries

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SMALL
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出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smll.202200742

关键词

acidic aqueous electrolytes; aqueous Zn batteries; buffering agents; tetramethylene sulfone

资金

  1. National Natural Science Foundation of China [22179117, U21A2075]
  2. startup Foundation for Hundred-Talent Program of Zhejiang University

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This study presents an effective approach to improve the reversibility and stability of Zn anodes by regulating the pH environment and limiting H2O activity using advanced acidic electrolytes. The results demonstrate that this method can achieve high coulombic efficiency and smooth Zn deposition, as well as ultra-stable cycling of Zn-V2O5 full cell.
Mild aqueous Zn batteries have attracted increasing attention for energy storage due to the advantages of high safety and low cost; however, the rechargeability of Zn anodes is one major issue for practical applications. In this work, an effective approach is proposed to improve the reversibility and stability of Zn anodes using advanced acidic electrolytes. A trace amount of acetic acid (HAc) is employed as a buffering agent to provide a stable pH environment in aqueous Zn electrolytes, and thus suppress passivation from precipitation reactions on Zn electrodes. Meanwhile, tetramethylene sulfone (TMS) is introduced as the critical component to stabilize the Zn anodes in the acidic electrolyte. TMS greatly strengthens the hydrogen-bonding network with reduced H2O activity and extends the electrochemical window of acidic electrolytes. With the optimal 3 m Zn(OTF)(2) in (H2O-HAc)/TMS acidic electrolyte (pH 1.6), the Zn electrode exhibits a coulombic efficiency of >99.8% and smooth Zn deposition. The Zn-V2O5 full cell demonstrates ultra-stable cycling over 20 000 cycles with a low decay rate of 0.0009% for each cycle at a negative/postive capacity ratio of 6.5. This work provides an insightful perspective to stabilize Zn electrodes by regulating the pH environment and limiting the H2O activity simultaneously for long-life Zn anodes.

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