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January 23, 2026Advanced Materials13 citations

A Gradient Functionalized Separator for Unlocking Latent Cathode Host Sites and Enhancing Zinc Anode DOD in Ultrahigh‐Areal‐Capacity Static Zn‐I 2 Batteries

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QYQingxiu YuXZX. Y. ZhangDYDongbo Yuan

Key Points

  • The aim is to develop a more effective separator for static aqueous zinc-iodine batteries to enhance performance and energy density.
  • Designed a gradient-structured separator with cyano-functionalized graphitic carbon nitride.
  • Modified a glass fiber separator to improve binding of polyiodides.
  • Conducted experimental tests and simulations to evaluate performance under high iodine loadings.
  • Achieved an areal capacity of 27.9 mAh cm−2 at high iodine loading (150.1 mg cm−2).
  • Demonstrated significant stability over 7200 cycles at 40 mg cm−2.
  • Validated a practical pouch cell delivering 5.8 mAh cm−2 with 85.87% capacity retention after 1100 cycles.

Abstract

ABSTRACT The development of static aqueous zinc‐iodine batteries (SAZIBs) is hindered by the polyiodide shuttling effect and poor zinc anode reversibility, issues that are exacerbated under high iodine loadings essential for high energy density. Herein, a gradient‐structured separator (G‐CCN@GF) is designed by modifying a glass fiber separator with 2D cyano‐functionalized graphitic carbon nitride (CCN). Experimental and simulation results demonstrate that the dense CCN layer facing the cathode effectively anchors polyiodides and unlocks latent electrochemical active sites, thereby facilitating conversion kinetics under high iodine loading and I/C ratio. Meanwhile, the thin and uniform CCN layer on the anode side promotes a uniform Zn 2+ flux, significantly improving the zinc reversibility under high depth of discharge (DOD). Consequently, the Zn/G‐CCN@GF/I 2 battery with a conventional activated carbon (AC) host achieves exceptional performance under high I/C ratio (2:1) conditions, including a high areal capacity of 27.9 mAh cm −2 at 150.1 mg cm −2 iodine loading and remarkable stability over 7200 cycles at 40 mg cm −2 . A 60 cm 2 pouch cell further validates practicality, delivering 5.8 mAh cm −2 and retaining 85.87% capacity after 1100 cycles. This work provides a feasible separator‐engineering strategy for high‐energy‐density SAZIBs.

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Cite This Study

Yu et al. (2026) studied this question.

synapsesocial.com/papers/697310b0c8125b09b0d205b9https://doi.org/10.1002/adma.202523132
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