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Nanocellulose supported hierarchical structured polyaniline/nanocarbon nanocomposite electrode via layer-by-layer assembly for green flexible supercapacitors

The development of a hierarchical structured multicomponent nanocomposite electrode is a promising strategy for utilizing the high efficiency of an electroactive material and improving the electrochemical performance. We propose cellulose nanofibril (CNF) aerogels with a nanoscale fiber-entangled ne...

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Autores principales: Lyu, Shaoyi, Chen, Yanping, Zhang, Longfei, Han, Shenjie, Lu, Yun, Chen, Yuan, Yang, Na, Chen, Zhilin, Wang, Siqun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9064629/
https://www.ncbi.nlm.nih.gov/pubmed/35520593
http://dx.doi.org/10.1039/c9ra02449b
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author Lyu, Shaoyi
Chen, Yanping
Zhang, Longfei
Han, Shenjie
Lu, Yun
Chen, Yuan
Yang, Na
Chen, Zhilin
Wang, Siqun
author_facet Lyu, Shaoyi
Chen, Yanping
Zhang, Longfei
Han, Shenjie
Lu, Yun
Chen, Yuan
Yang, Na
Chen, Zhilin
Wang, Siqun
author_sort Lyu, Shaoyi
collection PubMed
description The development of a hierarchical structured multicomponent nanocomposite electrode is a promising strategy for utilizing the high efficiency of an electroactive material and improving the electrochemical performance. We propose cellulose nanofibril (CNF) aerogels with a nanoscale fiber-entangled network as the skeleton (via layer-by-layer (LbL) assembly) of electroactive materials polyaniline (PANi), carboxylic multiwalled carbon nanotubes (CMWCNTs), and graphene oxide (GO) to obtain structurally ordered polymer–inorganic hybrid nanocomposite electrodes for high-capacity flexible supercapacitors. The uniformly distributed multilayer nanoarchitecture, interconnected network, and hydrophilicity of the electrode provide a high specific surface area, excellent ion diffusion channels, and large effective contact area, thereby improving the electrochemical performance of the supercapacitor electrode. The specific capacitance of the CNF-[PANi/CMWCNT](10) (CPC(10)) and CNF-[PANi/RGO](10) (CPR(10)) electrodes reaches 965.80 and 780.64 F g(−1) in 1 M aqueous H(2)SO(4) electrolyte, respectively; the corresponding values in PVA/H(3)PO(4) electrolyte are 1.59 and 1.46 F cm(−2). In addition, the assembled symmetric supercapacitors show good energy densities of 147.23 and 112.32 mW h cm(−2), as well as excellent durability and flexibility. Our approach offers a simple and effective method for fabricating an ideal well-structured nanocomposite electrode for green and flexible energy storage devices via LbL assembly.
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spelling pubmed-90646292022-05-04 Nanocellulose supported hierarchical structured polyaniline/nanocarbon nanocomposite electrode via layer-by-layer assembly for green flexible supercapacitors Lyu, Shaoyi Chen, Yanping Zhang, Longfei Han, Shenjie Lu, Yun Chen, Yuan Yang, Na Chen, Zhilin Wang, Siqun RSC Adv Chemistry The development of a hierarchical structured multicomponent nanocomposite electrode is a promising strategy for utilizing the high efficiency of an electroactive material and improving the electrochemical performance. We propose cellulose nanofibril (CNF) aerogels with a nanoscale fiber-entangled network as the skeleton (via layer-by-layer (LbL) assembly) of electroactive materials polyaniline (PANi), carboxylic multiwalled carbon nanotubes (CMWCNTs), and graphene oxide (GO) to obtain structurally ordered polymer–inorganic hybrid nanocomposite electrodes for high-capacity flexible supercapacitors. The uniformly distributed multilayer nanoarchitecture, interconnected network, and hydrophilicity of the electrode provide a high specific surface area, excellent ion diffusion channels, and large effective contact area, thereby improving the electrochemical performance of the supercapacitor electrode. The specific capacitance of the CNF-[PANi/CMWCNT](10) (CPC(10)) and CNF-[PANi/RGO](10) (CPR(10)) electrodes reaches 965.80 and 780.64 F g(−1) in 1 M aqueous H(2)SO(4) electrolyte, respectively; the corresponding values in PVA/H(3)PO(4) electrolyte are 1.59 and 1.46 F cm(−2). In addition, the assembled symmetric supercapacitors show good energy densities of 147.23 and 112.32 mW h cm(−2), as well as excellent durability and flexibility. Our approach offers a simple and effective method for fabricating an ideal well-structured nanocomposite electrode for green and flexible energy storage devices via LbL assembly. The Royal Society of Chemistry 2019-06-06 /pmc/articles/PMC9064629/ /pubmed/35520593 http://dx.doi.org/10.1039/c9ra02449b Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Lyu, Shaoyi
Chen, Yanping
Zhang, Longfei
Han, Shenjie
Lu, Yun
Chen, Yuan
Yang, Na
Chen, Zhilin
Wang, Siqun
Nanocellulose supported hierarchical structured polyaniline/nanocarbon nanocomposite electrode via layer-by-layer assembly for green flexible supercapacitors
title Nanocellulose supported hierarchical structured polyaniline/nanocarbon nanocomposite electrode via layer-by-layer assembly for green flexible supercapacitors
title_full Nanocellulose supported hierarchical structured polyaniline/nanocarbon nanocomposite electrode via layer-by-layer assembly for green flexible supercapacitors
title_fullStr Nanocellulose supported hierarchical structured polyaniline/nanocarbon nanocomposite electrode via layer-by-layer assembly for green flexible supercapacitors
title_full_unstemmed Nanocellulose supported hierarchical structured polyaniline/nanocarbon nanocomposite electrode via layer-by-layer assembly for green flexible supercapacitors
title_short Nanocellulose supported hierarchical structured polyaniline/nanocarbon nanocomposite electrode via layer-by-layer assembly for green flexible supercapacitors
title_sort nanocellulose supported hierarchical structured polyaniline/nanocarbon nanocomposite electrode via layer-by-layer assembly for green flexible supercapacitors
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9064629/
https://www.ncbi.nlm.nih.gov/pubmed/35520593
http://dx.doi.org/10.1039/c9ra02449b
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