Tough, flexible, and durable all-polyampholyte hydrogel supercapacitor

Most of the currently developed flexible energy storage devices lack sufficient flexibility to withstand various deformations, such as stretching, compression, and bending under the action of external forces. It also lacks sufficient and stable energy output. In this work, we use the flexible materi...

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Published in:Polymer Testing
Main Authors: Xuefeng Li, Yonglin Wang, Dapeng Li, Caiwei Shen, Mengfan Chen, Shijun Long, Yiwan Huang
Format: Article
Language:English
Published: Elsevier 2022-11-01
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S0142941822002410
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author Xuefeng Li
Yonglin Wang
Dapeng Li
Caiwei Shen
Mengfan Chen
Shijun Long
Yiwan Huang
author_facet Xuefeng Li
Yonglin Wang
Dapeng Li
Caiwei Shen
Mengfan Chen
Shijun Long
Yiwan Huang
author_sort Xuefeng Li
collection DOAJ
container_title Polymer Testing
description Most of the currently developed flexible energy storage devices lack sufficient flexibility to withstand various deformations, such as stretching, compression, and bending under the action of external forces. It also lacks sufficient and stable energy output. In this work, we use the flexible material hydrogel as electrode and electrolyte to design an all-hydrogel integrated flexible supercapacitor. Both the electrode and the electrolyte contain the same polyampholyte hydrogel P(NaSS-co-DMAEA-Q) matrix, making them possess superb self-adhesion due to the electrostatic interaction between the anion and cation group, and highly softness/toughness thanks to the energy-dissipative mechanism. The electrode of supercapacitor is a composite of activated carbon and hydrogel, which has excellent mechanical and electrical properties. Supercapacitors prepared from hydrogel electrodes and hydrogel electrolytes are inherently scalable/compressible, and simultaneously deliver high areal capacitance (128.9 mF cm−2 at 1 mV s−1 and 340.18 mF cm−2 at 0.1 mA cm−2) and maintain stable energy output. The combination of simple device structure, stable mechanical properties and excellent electrical properties makes flexible supercapacitors promising for applications in wearable electronics/devices and energy storage.
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spelling doaj-art-eae55ff9df28429e96e511a9ea9d06952025-08-19T21:25:44ZengElsevierPolymer Testing0142-94182022-11-0111510772010.1016/j.polymertesting.2022.107720Tough, flexible, and durable all-polyampholyte hydrogel supercapacitorXuefeng Li0Yonglin Wang1Dapeng Li2Caiwei Shen3Mengfan Chen4Shijun Long5Yiwan Huang6Hubei Provincial Key Laboratory of Green Materials for Light Industry, Hubei University of Technology, Wuhan, 430068, PR China; Hubei Longzhong Laboratory, Xiangyang, 441000, Hubei, China; Corresponding author. Hubei Provincial Key Laboratory of Green Materials for Light Industry, Hubei University of Technology, Wuhan, 430068, PR China.Hubei Provincial Key Laboratory of Green Materials for Light Industry, Hubei University of Technology, Wuhan, 430068, PR ChinaBioengineering Department, College of Engineering, University of Massachusetts Dartmouth, North Dartmouth, MA, 02747-2300, USA; Corresponding author.Mechanical Engineering Department, College of Engineering, University of Massachusetts Dartmouth, North Dartmouth, MA, 02747-2300, USAHubei Provincial Key Laboratory of Green Materials for Light Industry, Hubei University of Technology, Wuhan, 430068, PR ChinaHubei Province Innovation Center for Talent Introduction of New Materials and Green Manufacturing, Hubei University of Technology, Wuhan, 430068, PR ChinaHubei Province Innovation Center for Talent Introduction of New Materials and Green Manufacturing, Hubei University of Technology, Wuhan, 430068, PR ChinaMost of the currently developed flexible energy storage devices lack sufficient flexibility to withstand various deformations, such as stretching, compression, and bending under the action of external forces. It also lacks sufficient and stable energy output. In this work, we use the flexible material hydrogel as electrode and electrolyte to design an all-hydrogel integrated flexible supercapacitor. Both the electrode and the electrolyte contain the same polyampholyte hydrogel P(NaSS-co-DMAEA-Q) matrix, making them possess superb self-adhesion due to the electrostatic interaction between the anion and cation group, and highly softness/toughness thanks to the energy-dissipative mechanism. The electrode of supercapacitor is a composite of activated carbon and hydrogel, which has excellent mechanical and electrical properties. Supercapacitors prepared from hydrogel electrodes and hydrogel electrolytes are inherently scalable/compressible, and simultaneously deliver high areal capacitance (128.9 mF cm−2 at 1 mV s−1 and 340.18 mF cm−2 at 0.1 mA cm−2) and maintain stable energy output. The combination of simple device structure, stable mechanical properties and excellent electrical properties makes flexible supercapacitors promising for applications in wearable electronics/devices and energy storage.http://www.sciencedirect.com/science/article/pii/S0142941822002410Polyampholyte hydrogelHydrogel electrodesHydrogel electrolytesFlexible supercapacitorWearable electronics/devices
spellingShingle Xuefeng Li
Yonglin Wang
Dapeng Li
Caiwei Shen
Mengfan Chen
Shijun Long
Yiwan Huang
Tough, flexible, and durable all-polyampholyte hydrogel supercapacitor
Polyampholyte hydrogel
Hydrogel electrodes
Hydrogel electrolytes
Flexible supercapacitor
Wearable electronics/devices
title Tough, flexible, and durable all-polyampholyte hydrogel supercapacitor
title_full Tough, flexible, and durable all-polyampholyte hydrogel supercapacitor
title_fullStr Tough, flexible, and durable all-polyampholyte hydrogel supercapacitor
title_full_unstemmed Tough, flexible, and durable all-polyampholyte hydrogel supercapacitor
title_short Tough, flexible, and durable all-polyampholyte hydrogel supercapacitor
title_sort tough flexible and durable all polyampholyte hydrogel supercapacitor
topic Polyampholyte hydrogel
Hydrogel electrodes
Hydrogel electrolytes
Flexible supercapacitor
Wearable electronics/devices
url http://www.sciencedirect.com/science/article/pii/S0142941822002410
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