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通过流变工程调控湿法纺丝混合纤维的层级取向用于锌离子纤维电池

Manipulating Hierarchical Orientation of Wet-Spun Hybrid Fibers via Rheological Engineering for Zn-Ion Fiber Batteries.

作者信息

Xia Zhou, Li Shuo, Wu Guiqing, Shao Yanyan, Yang Dongzi, Luo Jinrong, Jiao Zhenyang, Sun Jingyu, Shao Yuanlong

机构信息

College of Energy, Soochow Institute for Energy and Materials InnovationS (SIEMIS), Key Laboratory of Advanced Carbon Materials and Wearable Energy Technologies of Jiangsu Province, Soochow University, Suzhou, 215006, P. R. China.

Beijing Graphene Institute (BGI), Beijing, 100095, P. R. China.

出版信息

Adv Mater. 2022 Aug;34(33):e2203905. doi: 10.1002/adma.202203905. Epub 2022 Jul 17.

DOI:10.1002/adma.202203905
PMID:35765207
Abstract

Wet-spinning is a promising strategy to fabricate fiber electrodes for real commercial fiber battery applications, according to its great compatibility with large-scale fiber production. However, engineering the rheological properties of the electrochemical active materials to accommodate the viscoelasticity or liquid crystalline requirements for continuous wet-spinning remains a daunting challenge. Here, with entropy-driven volume-exclusion effects, the rheological behavior of vanadium pentoxide (V O ) nanowire dispersions is regulated through introducing 2D graphene oxide (GO) flakes in an optimal ratio. By optimizing the viscoelasticity and liquid-crystalline behavior of the spinning dope, the wet-spun hybrid fibers display controlled hierarchical orientation. The wet-spun V O /rGO hybrid fiber with the optimal 10:1 mass fraction (V O /rGO ) exhibits a highly oriented nanoblock arrangement, enabling efficient Zn-ion migration and an excellent Zn-ion storage capacity of 486.03 mAh g at 0.1 A g . A half-meter long quasi-solid-state fiber Zn-ion battery is assembled with a polyacrylamide gel electrolyte and biocompatible Ecoflex encapsulation. The thus-derived fiber Zn-ion battery is integrated into a wearable self-powered system, incorporating a highly efficient GaAs solar cell, which delivers a record-high overall efficiency (9.80%) for flexible solar charging systems.

摘要

湿纺是一种很有前景的策略,可用于制造用于实际商业纤维电池应用的纤维电极,因为它与大规模纤维生产具有很强的兼容性。然而,设计电化学活性材料的流变特性以适应连续湿纺的粘弹性或液晶要求仍然是一项艰巨的挑战。在此,利用熵驱动的体积排阻效应,通过以最佳比例引入二维氧化石墨烯(GO)薄片来调节五氧化二钒(V₂O₅)纳米线分散体的流变行为。通过优化纺丝原液的粘弹性和液晶行为,湿纺复合纤维呈现出可控的分级取向。质量分数为最佳的10:1(V₂O₅/rGO)的湿纺V₂O₅/rGO复合纤维呈现出高度取向的纳米块排列,能够实现高效的锌离子迁移以及在0.1 A g⁻¹ 下486.03 mAh g⁻¹ 的优异锌离子存储容量。使用聚丙烯酰胺凝胶电解质和生物相容性的Ecoflex封装组装了半米长的准固态纤维锌离子电池。由此得到的纤维锌离子电池被集成到一个可穿戴自供电系统中,该系统包含一个高效的砷化镓太阳能电池,其为柔性太阳能充电系统提供了创纪录的高整体效率(9.80%)。

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