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Research on Three-Dimensional Porous Composite Nano-Assembled α-MnO(2)/Reduced Graphene Oxides and Their Super-Capacitive Performance

A series of three-dimensional porous composite α-MnO(2)/reduced graphene oxides (α-MnO(2)/RGO) were prepared by nano-assembly in a hydrothermal environment at pH 9.0–13.0 using graphene oxide as the precursor, KMnO(4) and MnCl(2) as the manganese sources and F(−) as the control agent of the α-MnO(2)...

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Autores principales: Luo, Liming, Peng, Huiyun, Sun, Hongjuan, Peng, Tongjiang, Yuan, Mingliang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9735457/
https://www.ncbi.nlm.nih.gov/pubmed/36499902
http://dx.doi.org/10.3390/ma15238406
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author Luo, Liming
Peng, Huiyun
Sun, Hongjuan
Peng, Tongjiang
Yuan, Mingliang
author_facet Luo, Liming
Peng, Huiyun
Sun, Hongjuan
Peng, Tongjiang
Yuan, Mingliang
author_sort Luo, Liming
collection PubMed
description A series of three-dimensional porous composite α-MnO(2)/reduced graphene oxides (α-MnO(2)/RGO) were prepared by nano-assembly in a hydrothermal environment at pH 9.0–13.0 using graphene oxide as the precursor, KMnO(4) and MnCl(2) as the manganese sources and F(−) as the control agent of the α-MnO(2) crystal form. The α-MnO(2)/RGO composites prepared at different hydrothermal pH levels presented porous network structures but there were significant differences in these structures. The special pore structure promoted the migration of ions in the electrolyte in the electrode material, and the larger specific surface area promoted the contact between the electrode material and the electrolyte ions. The introduction of graphene solved the problem of poor conductivity of MnO(2), facilitated the rapid transfer of electrons, and significantly improved the electrochemical performance of materials. When the pH was 12.0, the specific surface area of the 3D porous composite material αMGs-12.0 was 264 m(2)·g(−1), and it displayed the best super-capacitive performance; in Na(2)SO(4) solution with 1.0 mol·L(−1) electrolyte, the specific capacitance was 504 F·g(−1) when the current density was 0.5 A·g(−1) and the specific capacitance retention rate after 5000 cycles was 88.27%, showing that the composite had excellent electrochemical performance.
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spelling pubmed-97354572022-12-11 Research on Three-Dimensional Porous Composite Nano-Assembled α-MnO(2)/Reduced Graphene Oxides and Their Super-Capacitive Performance Luo, Liming Peng, Huiyun Sun, Hongjuan Peng, Tongjiang Yuan, Mingliang Materials (Basel) Article A series of three-dimensional porous composite α-MnO(2)/reduced graphene oxides (α-MnO(2)/RGO) were prepared by nano-assembly in a hydrothermal environment at pH 9.0–13.0 using graphene oxide as the precursor, KMnO(4) and MnCl(2) as the manganese sources and F(−) as the control agent of the α-MnO(2) crystal form. The α-MnO(2)/RGO composites prepared at different hydrothermal pH levels presented porous network structures but there were significant differences in these structures. The special pore structure promoted the migration of ions in the electrolyte in the electrode material, and the larger specific surface area promoted the contact between the electrode material and the electrolyte ions. The introduction of graphene solved the problem of poor conductivity of MnO(2), facilitated the rapid transfer of electrons, and significantly improved the electrochemical performance of materials. When the pH was 12.0, the specific surface area of the 3D porous composite material αMGs-12.0 was 264 m(2)·g(−1), and it displayed the best super-capacitive performance; in Na(2)SO(4) solution with 1.0 mol·L(−1) electrolyte, the specific capacitance was 504 F·g(−1) when the current density was 0.5 A·g(−1) and the specific capacitance retention rate after 5000 cycles was 88.27%, showing that the composite had excellent electrochemical performance. MDPI 2022-11-25 /pmc/articles/PMC9735457/ /pubmed/36499902 http://dx.doi.org/10.3390/ma15238406 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Luo, Liming
Peng, Huiyun
Sun, Hongjuan
Peng, Tongjiang
Yuan, Mingliang
Research on Three-Dimensional Porous Composite Nano-Assembled α-MnO(2)/Reduced Graphene Oxides and Their Super-Capacitive Performance
title Research on Three-Dimensional Porous Composite Nano-Assembled α-MnO(2)/Reduced Graphene Oxides and Their Super-Capacitive Performance
title_full Research on Three-Dimensional Porous Composite Nano-Assembled α-MnO(2)/Reduced Graphene Oxides and Their Super-Capacitive Performance
title_fullStr Research on Three-Dimensional Porous Composite Nano-Assembled α-MnO(2)/Reduced Graphene Oxides and Their Super-Capacitive Performance
title_full_unstemmed Research on Three-Dimensional Porous Composite Nano-Assembled α-MnO(2)/Reduced Graphene Oxides and Their Super-Capacitive Performance
title_short Research on Three-Dimensional Porous Composite Nano-Assembled α-MnO(2)/Reduced Graphene Oxides and Their Super-Capacitive Performance
title_sort research on three-dimensional porous composite nano-assembled α-mno(2)/reduced graphene oxides and their super-capacitive performance
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9735457/
https://www.ncbi.nlm.nih.gov/pubmed/36499902
http://dx.doi.org/10.3390/ma15238406
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