Electro-induced interfacial enrichment polymerization enables flexible fiber zinc batteries with robust electrode-electrolyte interface and ultrahigh zinc utilization

Abstract Flexible aqueous fiber zinc batteries are recognized to be promising for flexible and wearable electronics due to both high safety and energy-storage capability. However, their applications have long been hindered by poor fiber electrode-gel electrolyte interfaces and extremely low zinc utilization. Here we report a highly controllable one-step electro-induced interfacial enrichment polymerization strategy to simultaneously address these challenges. The in-situ hybrid polymer hydrogel electrolyte is directly constructed on the fiber electrode surface via synchronously electro-initiated interfacial free-radical polymerization and ionic crosslinking. The rational interface design not only establishes exceptionally robust fiber electrode-gel electrolyte interfaces via strong interfacial chemical bonding, but also guides preferential deposition of Zn (002) plane and suppresses side reactions and dendrite growth. Consequently, even under an ultrahigh zinc utilization of 85.4%, the in-situ fiber Zn//Zn cells exhibit an extended cycling life exceeding 300 hours, significantly outperforming previously reported fiber Zn//Zn cells. Furthermore, at a low N/P ratio of 2.55, the highly flexible aqueous Zn//polyaniline fiber batteries demonstrate a high capacity retention of 92.31% after 1500 cycles with an average coulombic efficiency of 99.94%. This work presents a general and effective strategy to construct robust electrode-gel electrolyte interfaces for high-performance flexible and wearable energy storage devices.

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Publication Details

Journal
Nano Research Energy
Published
2026-09-24
DOI
https://doi.org/10.26599/nre.2026.9120279
Primary Topic
Advanced battery technologies research
Type
article
Field-Weighted Citation Impact
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Electro-induced interfacial enrichment polymerization enables flexible fiber zinc batteries with robust electrode-electrolyte interface and ultrahigh zinc utilization

Xudong Pei, Yang Zhao, Wanyu Zhou, Xiulin Huang et al.
Nano Research Energy
Advanced battery technologies research
article

Electro-induced interfacial enrichment polymerization enables flexible fiber zinc batteries with robust electrode-electrolyte interface and ultrahigh zinc utilization

Xudong Pei, Yang Zhao, Wanyu Zhou, Xiulin Huang, Liangcai Jiang, Gang Ye, Wenhao Zuo, Huisheng Peng
article en

Abstract

Abstract Flexible aqueous fiber zinc batteries are recognized to be promising for flexible and wearable electronics due to both high safety and energy-storage capability. However, their applications have long been hindered by poor fiber electrode-gel electrolyte interfaces and extremely low zinc utilization. Here we report a highly controllable one-step electro-induced interfacial enrichment polymerization strategy to simultaneously address these challenges. The in-situ hybrid polymer hydrogel electrolyte is directly constructed on the fiber electrode surface via synchronously electro-initiated interfacial free-radical polymerization and ionic crosslinking. The rational interface design not only establishes exceptionally robust fiber electrode-gel electrolyte interfaces via strong interfacial chemical bonding, but also guides preferential deposition of Zn (002) plane and suppresses side reactions and dendrite growth. Consequently, even under an ultrahigh zinc utilization of 85.4%, the in-situ fiber Zn//Zn cells exhibit an extended cycling life exceeding 300 hours, significantly outperforming previously reported fiber Zn//Zn cells. Furthermore, at a low N/P ratio of 2.55, the highly flexible aqueous Zn//polyaniline fiber batteries demonstrate a high capacity retention of 92.31% after 1500 cycles with an average coulombic efficiency of 99.94%. This work presents a general and effective strategy to construct robust electrode-gel electrolyte interfaces for high-performance flexible and wearable energy storage devices.

Nano Research Energy
Affordable and clean energy
Openalex Percentile: Top 21%
Advanced battery technologies research
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Electro-induced interfacial enrichment polymerization enables flexible fiber zinc batteries with robust electrode-electrolyte interface and ultrahigh zinc utilization — Xudong Pei, Yang Zhao, et al. · Nano Research Energy (2026) | TGRS Research Map | TGRS