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May 11, 2026Advanced Materials8 citations

Ion‐Replenishing Interlayer and Tailored Electrolyte Jointly Activate Four‐Electron Zinc–Iodine Batteries

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JXJie XuQDQingyu DaiRYRui Yang

Key Points

  • This research aims to enhance the performance of zinc–iodine batteries through improved chemistry and stability.
  • Developed a NH4Cl-based aqueous electrolyte and an ion-replenishing COF–Cl interlayer.
  • Conducted in situ spectroscopic and theoretical analyses to explore redox kinetics.
  • Tested performance in pouch cells at low temperatures.
  • Achieved high energy density of 278 Wh kg−1 and fast kinetics of 128 mAh g−1 at 10 A g−1.
  • Demonstrated remarkable cycling durability over 45000 cycles at –5°C with a decay rate of 0.00039% per cycle.
  • Validated the strategies effectively in pouch cells under low-temperature conditions.

Abstract

ABSTRACT Activating four‐electron iodine chemistry in zinc–iodine (Zn–I 2 ) batteries promises higher energy density, yet remains challenged by polyiodide shuttling and the instability of high‐valence I + species. Here, we demonstrate that a customized NH 4 Cl‐based aqueous electrolyte, coupled with an ion‐replenishing Cl‐functionalized covalent organic framework (COF–Cl) interlayer, enables long‐lived four‐electron Zn–I 2 batteries. The optimized electrolyte promotes I + –Cl − complexation, while the COF–Cl interlayer immobilizes polyiodides and continuously releases Cl − to stabilize I + against hydrolysis, collectively ensuring reversible I − /I 0 /I + redox conversion. In situ spectroscopic and theoretical analyses reveal accelerated high‐valence redox kinetics and strong I + /polyiodide interactions. As a result, the optimized cell delivers high energy density (278 Wh kg − 1 ), fast kinetics (128 mAh g − 1 at 10 A g − 1 ), and remarkable cycling durability over 45000 cycles at –5°C with an ultralow decay rate of 0.00039% per cycle, with the strategy further validated in pouch cells under low‐temperature conditions. This work establishes an effective ion‐replenishing interlayer–electrolyte strategy for robust, high‐energy aqueous Zn–I 2 batteries.

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Cite This Study

Xu et al. (2026) studied this question.

synapsesocial.com/papers/6a0171ed3a9f334c2827208ahttps://doi.org/10.1002/adma.73355
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