材料科学
法拉第效率
阳极
锌
超分子化学
电极
韧性
相容性(地球化学)
箔法
模块化设计
纳米技术
化学工程
聚合物
氢键
沉积(地质)
超分子聚合物
超分子组装
电导率
复合数
纳米复合材料
离子键合
丙烯酰胺
离子电导率
材料设计
膜
复合材料
离子液体
离子强度
氢
作者
Xuanyu Zeng,Zhiqiang Wang,Le Yu,Jingyi Huang,Sijun Wang,Zhaohui Wang,Chaoji Chen
标识
DOI:10.1002/adma.202519775
摘要
ABSTRACT Replacing zinc foil with Zn micropowders (ZnMPs) enhances manufacturing compatibility for Zn‐metal batteries but imposes challenges like uncontrolled Zn deposition and accelerated structural degradation, typically resulting in a short cycle life of < 50 cycles. Herein, we synthesize a multifunctional bottle‐brush polycationic binder based on naturally abundant and mechanically robust chitin, which enables exceptional long‐term Zn plating/stripping reversibility, averaging 99.5% Coulombic efficiency over 300 cycles. The design rationales are experimentally validated as follows: diverse functional groups integrated onto the chitin backbone provide multiple supramolecular interactions ensuring ZnMP electrodes’ spatial uniformity and structural robustness; Zn 2+ ‐carboxylate coordination simultaneously enhances the binder's mechanical strength (~1.2 MPa), toughness (~8.6 MJ m −3 ) and ionic conductivity (an 87% increase, reaching 1.72 × 10 −5 S cm − 1 ) upon swelling; while synergistic dynamic electrostatic interactions and hydrogen bonding permit rapid self‐recovery of the electrodes during cycling. This work underscores the promise of supramolecular engineering for binders targeting aggressive electrode chemistries.
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