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Structure-Enhanced Mechanically Robust Graphite Foam with Ultrahigh MnO(2) Loading for Supercapacitors

With the fast bloom of flexible electronics and green vehicles, it is vitally important to rationally design and facilely construct customized functional materials with excellent mechanical properties as well as high electrochemical performance. Herein, by utilizing two modern industrial techniques,...

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Autores principales: Cao, Qinghe, Du, Junjie, Tang, Xiaowan, Xu, Xi, Huang, Longsheng, Cai, Dongming, Long, Xu, Wang, Xuewen, Ding, Jun, Guan, Cao, Huang, Wei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AAAS 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7676245/
https://www.ncbi.nlm.nih.gov/pubmed/33274338
http://dx.doi.org/10.34133/2020/7304767
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author Cao, Qinghe
Du, Junjie
Tang, Xiaowan
Xu, Xi
Huang, Longsheng
Cai, Dongming
Long, Xu
Wang, Xuewen
Ding, Jun
Guan, Cao
Huang, Wei
author_facet Cao, Qinghe
Du, Junjie
Tang, Xiaowan
Xu, Xi
Huang, Longsheng
Cai, Dongming
Long, Xu
Wang, Xuewen
Ding, Jun
Guan, Cao
Huang, Wei
author_sort Cao, Qinghe
collection PubMed
description With the fast bloom of flexible electronics and green vehicles, it is vitally important to rationally design and facilely construct customized functional materials with excellent mechanical properties as well as high electrochemical performance. Herein, by utilizing two modern industrial techniques, digital light processing (DLP) and chemical vapor deposition (CVD), a unique 3D hollow graphite foam (HGF) is demonstrated, which shows a periodic porous structure and robust mechanical properties. Finite element analysis (FEA) results confirm that the properly designed gyroidal porous structure provides a uniform stress area and mitigates potential structural failure caused by stress concentrations. A typical HGF can show a high Young's modulus of 3.18 MPa at a low density of 48.2 mg cm(−3). The porous HGF is further covered by active MnO(2) material with a high mass loading of 28.2 mg cm(−2) (141 mg cm(−3)), and the MnO(2)/HGF electrode still achieves a satisfactory specific capacitance of 260 F g(−1), corresponding to a high areal capacitance of 7.35 F cm(−2) and a high volumetric capacitance of 36.75 F cm(−3). Furthermore, the assembled quasi-solid-state asymmetric supercapacitor also shows remarkable mechanical properties as well as electrochemical performance.
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spelling pubmed-76762452020-12-02 Structure-Enhanced Mechanically Robust Graphite Foam with Ultrahigh MnO(2) Loading for Supercapacitors Cao, Qinghe Du, Junjie Tang, Xiaowan Xu, Xi Huang, Longsheng Cai, Dongming Long, Xu Wang, Xuewen Ding, Jun Guan, Cao Huang, Wei Research (Wash D C) Research Article With the fast bloom of flexible electronics and green vehicles, it is vitally important to rationally design and facilely construct customized functional materials with excellent mechanical properties as well as high electrochemical performance. Herein, by utilizing two modern industrial techniques, digital light processing (DLP) and chemical vapor deposition (CVD), a unique 3D hollow graphite foam (HGF) is demonstrated, which shows a periodic porous structure and robust mechanical properties. Finite element analysis (FEA) results confirm that the properly designed gyroidal porous structure provides a uniform stress area and mitigates potential structural failure caused by stress concentrations. A typical HGF can show a high Young's modulus of 3.18 MPa at a low density of 48.2 mg cm(−3). The porous HGF is further covered by active MnO(2) material with a high mass loading of 28.2 mg cm(−2) (141 mg cm(−3)), and the MnO(2)/HGF electrode still achieves a satisfactory specific capacitance of 260 F g(−1), corresponding to a high areal capacitance of 7.35 F cm(−2) and a high volumetric capacitance of 36.75 F cm(−3). Furthermore, the assembled quasi-solid-state asymmetric supercapacitor also shows remarkable mechanical properties as well as electrochemical performance. AAAS 2020-11-10 /pmc/articles/PMC7676245/ /pubmed/33274338 http://dx.doi.org/10.34133/2020/7304767 Text en Copyright © 2020 Qinghe Cao et al. https://creativecommons.org/licenses/by/4.0/ Exclusive Licensee Science and Technology Review Publishing House. Distributed under a Creative Commons Attribution License (CC BY 4.0).
spellingShingle Research Article
Cao, Qinghe
Du, Junjie
Tang, Xiaowan
Xu, Xi
Huang, Longsheng
Cai, Dongming
Long, Xu
Wang, Xuewen
Ding, Jun
Guan, Cao
Huang, Wei
Structure-Enhanced Mechanically Robust Graphite Foam with Ultrahigh MnO(2) Loading for Supercapacitors
title Structure-Enhanced Mechanically Robust Graphite Foam with Ultrahigh MnO(2) Loading for Supercapacitors
title_full Structure-Enhanced Mechanically Robust Graphite Foam with Ultrahigh MnO(2) Loading for Supercapacitors
title_fullStr Structure-Enhanced Mechanically Robust Graphite Foam with Ultrahigh MnO(2) Loading for Supercapacitors
title_full_unstemmed Structure-Enhanced Mechanically Robust Graphite Foam with Ultrahigh MnO(2) Loading for Supercapacitors
title_short Structure-Enhanced Mechanically Robust Graphite Foam with Ultrahigh MnO(2) Loading for Supercapacitors
title_sort structure-enhanced mechanically robust graphite foam with ultrahigh mno(2) loading for supercapacitors
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7676245/
https://www.ncbi.nlm.nih.gov/pubmed/33274338
http://dx.doi.org/10.34133/2020/7304767
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