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用于超可拉伸聚吡咯基超级电容器的冷冻水凝胶表面上的聚合驱动自褶皱

Polymerization-Driven Self-Wrinkling on a Frozen Hydrogel Surface toward Ultra-Stretchable Polypyrrole-Based Supercapacitors.

作者信息

Wang Yufeng, Liu Ying, Wang Zhengtao, Nguyen Dai Hai, Zhang Chao, Liu Tianxi

机构信息

State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University, Shanghai 201620, P. R. China.

Institute of Applied Materials Science, Vietnam Academy of Science and Technology, Ho Chi Minh City 800010, Vietnam.

出版信息

ACS Appl Mater Interfaces. 2022 Oct 12;14(40):45910-45920. doi: 10.1021/acsami.2c13829. Epub 2022 Sep 30.

Abstract

The construction of ultra-stretchable and smart supercapacitors with a large deformation-tolerance range and highly efficient self-healability is fully desired for next-generation wearable electronics. Herein, a sandwich-structured self-wrinkling hydrogel film (SSHF) is fabricated by freezing-constrained polymerization-driven self-wrinkling. Polypyrrole layers are first polymerized on a frozen pre-stretching hydrogel surface and subsequently self-wrinkled upon releasing the pre-strain. The SSHF with two polypyrrole electrode layers sandwiched with a hydrogel electrolytic layer is finally achieved by cutting four edges, and the all-in-one integrated structure creatively avoids the delamination between the electrodes and the electrolyte. The as-obtained SSHF can be directly used as an integrated all-in-one supercapacitor demonstrating high specific capacitance (79.5 F g at 0.5 A g), large stretchability (>500%), and reliable room temperature self-healability. The freezing-constrained polymerization-driven self-wrinkling strategy might provide a unique self-wrinkling procedure to fabricate self-healable conducting polymer-based hydrogels for ultra-stretchable smart supercapacitors.

摘要

下一代可穿戴电子产品迫切需要构建具有大变形容忍范围和高效自修复能力的超拉伸智能超级电容器。在此,通过冷冻约束聚合驱动的自褶皱制备了一种三明治结构的自褶皱水凝胶薄膜(SSHF)。聚吡咯层首先在冷冻预拉伸的水凝胶表面聚合,随后在释放预应变时自褶皱。通过切割四条边最终获得了具有两个聚吡咯电极层夹着一个水凝胶电解质层的SSHF,这种一体化集成结构创造性地避免了电极与电解质之间的分层。所制备的SSHF可直接用作集成一体式超级电容器,具有高比电容(在0.5 A g时为79.5 F g)、大拉伸性(>500%)和可靠的室温自修复能力。冷冻约束聚合驱动的自褶皱策略可能为制备用于超拉伸智能超级电容器的自修复导电聚合物基水凝胶提供一种独特的自褶皱方法。

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