Mechano-electrochemically stable fibrous zinc-ion batteries with unified aramid nanofibres skeleton

材料科学 芳纶 电极 静电纺丝 复合材料 电解质 纳米纤维 纳米技术 柔性电子器件 电化学 可穿戴技术 变形(气象学) 纤维 储能 数码产品 可穿戴计算机 纳米尺度 超细纤维 涂层 压力(语言学) 超级电容器
作者
Yinan Yang,Z. Chen,Xianda Ma,Bingyun Ma,Haochen Huang,Gang Xiao,Miaoyi Xu,Zewan Lin,Yanyan Shao,Yanyan Shao,Ziyan Xiong,Weifeng Yang,Xiaoxu Zhao,Jin Zhang,Tao Cheng,Xuan Zhang,Yuanlong Shao,Yuanlong Shao
出处
期刊:Nature Communications [Nature Portfolio]
标识
DOI:10.1038/s41467-026-75859-z
摘要

Hydrogel electrolyte-based fibrous zinc-ion batteries exhibit exceptional safety and flexibility, positioning them as promising candidates for wearable electronics. However, conventional hydrogel electrolyte-based fibrous batteries suffer from substantial interfacial mechanical mismatches between rigid electrodes and soft hydrogel electrolytes, leading to compromised mechano-electrochemical stability and inferior electrochemical performance under deformation. To address this critical issue, we simultaneously introduce aramid nanofibres into both electrodes and electrolyte via wet spinning, serving as a cognate skeleton to bridge the mechanical mismatch in hydrogel electrolyte-based fibrous zinc-ion batteries. This design enables highly concerted mechanical modulus across electrodes and electrolyte, effectively mitigating stress concentration-induced interfacial degradation during deformation. Furthermore, aramid nanofibres synergistically modulate anion migration kinetics and crystalline structure of hydrogel electrolytes, addressing intrinsic challenges in sluggish ion transport, parasitic byproduct formation, and uncontrolled zinc dendrite growth of deformed fibrous batteries. The resulting fibrous batteries exhibit robust mechano-electrochemical stability, sustaining stable operation over 100,000 deformation cycles (1% strain, 0.01% s−1) and maintaining high-capacity retention (90.3% ± 1.3%) in subsequent charge-discharge cycling. The potential application in textiles is further exemplified after weaving the fibrous batteries into an energy storage textile, offering a significant potential for durable, deformation-resistant flexible wearable electronics. Conventional fiber flexible batteries for wearable electronics often fail due to mechanical mismatch between rigid electrodes and soft electrolytes. Here, authors introduce aramid nanofibers into both electrodes and electrolytes of a fibrous Zn-ion battery, forming a unified skeleton that harmonizes mechanical and electrochemical properties.
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