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September 22, 2025Angewandte Chemie2 citations

Interrupting the Hydroxide Enrichment‐Induced Electrode Degradation Loop for Achieving Stable Aqueous Zn‐I2 Batteries

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HDHanlin DingZLZhenxin LinXLXiaoting Lin

Key Points

  • A novel electrolyte additive can stabilize zinc-iodine batteries by breaking an electrode degradation loop.
  • The intervention increased cycle life significantly, achieving stable performance for 9000 cycles at a high mass loading.
  • The strategy reduces hydroxide ion crossover and prevents unwanted chemical reactions that shorten battery life.
  • This bi-directional regulation approach could lead to improved designs for aqueous battery environments.

Abstract

Abstract Severe adverse reactions, including hydrogen evolution reaction (HER) and polyiodide shuttle, lead to short lifetimes of rechargeable aqueous zinc‐iodine (Zn‐I 2 ) batteries and have aroused widespread attention. However, few studies have specifically investigated the impact of hydroxide ion (OH − ) disturbance generated by side reactions on the Zn anode and I 2 cathode in aqueous electrolytes. Herein, a facile electrolyte additive strategy was introduced to break the OH − enrichment‐induced bidirectional electrode degradation loop toward achieving stable Zn‐I 2 cells. Particularly, the bidirectional additive restricts the crossover of OH − , suppressing the iodine hydrolysis reaction‐induced polyiodide formation and capturing polyiodides to prevent shuttling. It also preferentially interacts with Zn, simultaneously reconstructing the solvation shell and promoting the formation of a hybrid ZnS‐rich solid electrolyte interface (SEI) to improve Zn kinetics and inhibit HER. Therefore, a stable cycling of Zn//Zn cells can be sustained for 1700 and 400 h in acidic and alkaline electrolytes, respectively. Impressively, the Zn‐I 2 cell achieved a cycle life of 9000 cycles at a high mass loading of 12 mg cm −2 . The concept of bi‐directional synergetic regulation for accounting for the aqueous environment is expected to provide a new approach for highly stable aqueous Zn‐I 2 batteries.

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Cite This Study

Ding et al. (2025) studied this question.

synapsesocial.com/papers/68d46fdc31b076d99fa6a592https://doi.org/10.1002/ange.202513993
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