Development of polyoxometalate-anchored 3D hybrid hydrogel for high-performance flexible pseudo-solid-state supercapacitor

A highly interconnected three-dimensional (3D) networked conductive polypyrrole (PPy) hydrogel anchored with uniformly distributed phosphomolybdic acid (PMo12/PPy hybrid hydrogel) was fabricated by one spot in-situ crosslinking-polymerization strategy. The interconnected 3D hydrogel frameworks not o...

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Main Authors: Wang, Meiling, Yu, Yifan, Cui, Mingzhu, Cao, Xun, Liu, Weifeng, Wu, Cao, Liu, Xuguang, Zhang, Tianyuan, Huang, Yizhong
Other Authors: School of Materials Science and Engineering
Format: Article
Language:English
Published: 2021
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Online Access:https://hdl.handle.net/10356/154250
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1542502021-12-16T06:07:32Z Development of polyoxometalate-anchored 3D hybrid hydrogel for high-performance flexible pseudo-solid-state supercapacitor Wang, Meiling Yu, Yifan Cui, Mingzhu Cao, Xun Liu, Weifeng Wu, Cao Liu, Xuguang Zhang, Tianyuan Huang, Yizhong School of Materials Science and Engineering Engineering::Materials Phosphomolybdic Acid Hybrid Hydrogel A highly interconnected three-dimensional (3D) networked conductive polypyrrole (PPy) hydrogel anchored with uniformly distributed phosphomolybdic acid (PMo12/PPy hybrid hydrogel) was fabricated by one spot in-situ crosslinking-polymerization strategy. The interconnected 3D hydrogel frameworks not only realize homogenous distributing of PMo12 active particles against aggregation, but also provide continuous transport highways for electron and ion. The specific capacitance of the PMo12/PPy hybrid hydrogel was evaluated in three-electrode system to be 776 F/g, which are almost 2.5 fold higher than that of conventional PMo12/PPy composites. Density functional theory (DFT) calculates the hydrogen bonding strength between cross-linker (TCPP) and PPy to be comparable with the force between closely packed PPy chains. Consequently, the TCPP crosslink with PPy to form a stable 3D porous structure, which provides more adsorb sites for PMo12, bring better stability than conventional PMo12/PPy composites. Meanwhile, the assembled liquid-state device achieves its specific capacitance of 300 F/g and obtains a high rate capability and good cycling stability. The assembled solid-state supercapacitor delivers a maximum specific capacitance of 162.1 F/g, high energy density of 50.66 Wh/kg at power density of 750 W/kg, displays excellent electrochemical performances exceeding those of other polyoxometalate (POM) or metal oxide-based systems to the best of our knowledge. Furthermore, the fabricated supercapacitor was disclosed to render very high capacitance when bended. The fabrication of such a flexible pseudo-solid-state energy storage device is an important breakthrough towards achieving superior performance not possible with conventional polymer/POM composite. We gratefully acknowledge the financial support from National Natural Science Foundation of China (51902222, 51603142, U1610255), Natural Science Foundation of Shanxi Province (201701D221072), the China Scholarship Council (No. 201806935057), the Shanxi Provincial Key Innovative Research Team in Science and Technology (2015013002-10 and 201605D131045-10). 2021-12-16T06:07:32Z 2021-12-16T06:07:32Z 2020 Journal Article Wang, M., Yu, Y., Cui, M., Cao, X., Liu, W., Wu, C., Liu, X., Zhang, T. & Huang, Y. (2020). Development of polyoxometalate-anchored 3D hybrid hydrogel for high-performance flexible pseudo-solid-state supercapacitor. Electrochimica Acta, 329, 135181-. https://dx.doi.org/10.1016/j.electacta.2019.135181 0013-4686 https://hdl.handle.net/10356/154250 10.1016/j.electacta.2019.135181 2-s2.0-85074779472 329 135181 en Electrochimica Acta © 2019 Elsevier Ltd. All rights reserved.
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Materials
Phosphomolybdic Acid
Hybrid Hydrogel
spellingShingle Engineering::Materials
Phosphomolybdic Acid
Hybrid Hydrogel
Wang, Meiling
Yu, Yifan
Cui, Mingzhu
Cao, Xun
Liu, Weifeng
Wu, Cao
Liu, Xuguang
Zhang, Tianyuan
Huang, Yizhong
Development of polyoxometalate-anchored 3D hybrid hydrogel for high-performance flexible pseudo-solid-state supercapacitor
description A highly interconnected three-dimensional (3D) networked conductive polypyrrole (PPy) hydrogel anchored with uniformly distributed phosphomolybdic acid (PMo12/PPy hybrid hydrogel) was fabricated by one spot in-situ crosslinking-polymerization strategy. The interconnected 3D hydrogel frameworks not only realize homogenous distributing of PMo12 active particles against aggregation, but also provide continuous transport highways for electron and ion. The specific capacitance of the PMo12/PPy hybrid hydrogel was evaluated in three-electrode system to be 776 F/g, which are almost 2.5 fold higher than that of conventional PMo12/PPy composites. Density functional theory (DFT) calculates the hydrogen bonding strength between cross-linker (TCPP) and PPy to be comparable with the force between closely packed PPy chains. Consequently, the TCPP crosslink with PPy to form a stable 3D porous structure, which provides more adsorb sites for PMo12, bring better stability than conventional PMo12/PPy composites. Meanwhile, the assembled liquid-state device achieves its specific capacitance of 300 F/g and obtains a high rate capability and good cycling stability. The assembled solid-state supercapacitor delivers a maximum specific capacitance of 162.1 F/g, high energy density of 50.66 Wh/kg at power density of 750 W/kg, displays excellent electrochemical performances exceeding those of other polyoxometalate (POM) or metal oxide-based systems to the best of our knowledge. Furthermore, the fabricated supercapacitor was disclosed to render very high capacitance when bended. The fabrication of such a flexible pseudo-solid-state energy storage device is an important breakthrough towards achieving superior performance not possible with conventional polymer/POM composite.
author2 School of Materials Science and Engineering
author_facet School of Materials Science and Engineering
Wang, Meiling
Yu, Yifan
Cui, Mingzhu
Cao, Xun
Liu, Weifeng
Wu, Cao
Liu, Xuguang
Zhang, Tianyuan
Huang, Yizhong
format Article
author Wang, Meiling
Yu, Yifan
Cui, Mingzhu
Cao, Xun
Liu, Weifeng
Wu, Cao
Liu, Xuguang
Zhang, Tianyuan
Huang, Yizhong
author_sort Wang, Meiling
title Development of polyoxometalate-anchored 3D hybrid hydrogel for high-performance flexible pseudo-solid-state supercapacitor
title_short Development of polyoxometalate-anchored 3D hybrid hydrogel for high-performance flexible pseudo-solid-state supercapacitor
title_full Development of polyoxometalate-anchored 3D hybrid hydrogel for high-performance flexible pseudo-solid-state supercapacitor
title_fullStr Development of polyoxometalate-anchored 3D hybrid hydrogel for high-performance flexible pseudo-solid-state supercapacitor
title_full_unstemmed Development of polyoxometalate-anchored 3D hybrid hydrogel for high-performance flexible pseudo-solid-state supercapacitor
title_sort development of polyoxometalate-anchored 3d hybrid hydrogel for high-performance flexible pseudo-solid-state supercapacitor
publishDate 2021
url https://hdl.handle.net/10356/154250
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