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Ultra-High Energy Density Hybrid Supercapacitors Using MnO(2)/Reduced Graphene Oxide Hybrid Nanoscrolls

Manganese oxide (MnO(2)) is a promising material for supercapacitor applications, with a theoretical ultra-high energy density of 308 Wh/kg. However, such ultra-high energy density has not been achieved experimentally in MnO(2)-based supercapacitors because of several practical issues, such as low e...

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Autores principales: Rani, Janardhanan. R., Thangavel, Ranjith, Kim, Minjae, Lee, Yun Sung, Jang, Jae-Hyung
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7603058/
https://www.ncbi.nlm.nih.gov/pubmed/33081310
http://dx.doi.org/10.3390/nano10102049
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author Rani, Janardhanan. R.
Thangavel, Ranjith
Kim, Minjae
Lee, Yun Sung
Jang, Jae-Hyung
author_facet Rani, Janardhanan. R.
Thangavel, Ranjith
Kim, Minjae
Lee, Yun Sung
Jang, Jae-Hyung
author_sort Rani, Janardhanan. R.
collection PubMed
description Manganese oxide (MnO(2)) is a promising material for supercapacitor applications, with a theoretical ultra-high energy density of 308 Wh/kg. However, such ultra-high energy density has not been achieved experimentally in MnO(2)-based supercapacitors because of several practical issues, such as low electrical conductivity of MnO(2), incomplete utilization of MnO(2), and dissolution of MnO(2.) The present study investigates the potential of MnO(2)/reduced graphene oxide (rGO) hybrid nanoscroll (GMS) structures as electrode material for overcoming the difficulties and for developing ultra-high-energy storage systems. A hybrid supercapacitor, comprising MnO(2)/rGO nanoscrolls as anode material and activated carbon (AC) as a cathode, is fabricated. The GMS/AC hybrid supercapacitor exhibited enhanced energy density, superior rate performance, and promising Li storage capability that bridged the energy–density gap between conventional Li-ion batteries (LIBs) and supercapacitors. The fabricated GMS/AC hybrid supercapacitor demonstrates an ultra-high lithium discharge capacity of 2040 mAh/g. The GMS/AC cell delivered a maximum energy density of 105.3 Wh/kg and a corresponding power density of 308.1 W/kg. It also delivered an energy density of 42.77 Wh/kg at a power density as high as 30,800 W/kg. Our GMS/AC cell’s energy density values are very high compared with those of other reported values of graphene-based hybrid structures. The GMS structures offer significant potential as an electrode material for energy-storage systems and can also enhance the performance of the other electrode materials for LIBs and hybrid supercapacitors.
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spelling pubmed-76030582020-11-01 Ultra-High Energy Density Hybrid Supercapacitors Using MnO(2)/Reduced Graphene Oxide Hybrid Nanoscrolls Rani, Janardhanan. R. Thangavel, Ranjith Kim, Minjae Lee, Yun Sung Jang, Jae-Hyung Nanomaterials (Basel) Article Manganese oxide (MnO(2)) is a promising material for supercapacitor applications, with a theoretical ultra-high energy density of 308 Wh/kg. However, such ultra-high energy density has not been achieved experimentally in MnO(2)-based supercapacitors because of several practical issues, such as low electrical conductivity of MnO(2), incomplete utilization of MnO(2), and dissolution of MnO(2.) The present study investigates the potential of MnO(2)/reduced graphene oxide (rGO) hybrid nanoscroll (GMS) structures as electrode material for overcoming the difficulties and for developing ultra-high-energy storage systems. A hybrid supercapacitor, comprising MnO(2)/rGO nanoscrolls as anode material and activated carbon (AC) as a cathode, is fabricated. The GMS/AC hybrid supercapacitor exhibited enhanced energy density, superior rate performance, and promising Li storage capability that bridged the energy–density gap between conventional Li-ion batteries (LIBs) and supercapacitors. The fabricated GMS/AC hybrid supercapacitor demonstrates an ultra-high lithium discharge capacity of 2040 mAh/g. The GMS/AC cell delivered a maximum energy density of 105.3 Wh/kg and a corresponding power density of 308.1 W/kg. It also delivered an energy density of 42.77 Wh/kg at a power density as high as 30,800 W/kg. Our GMS/AC cell’s energy density values are very high compared with those of other reported values of graphene-based hybrid structures. The GMS structures offer significant potential as an electrode material for energy-storage systems and can also enhance the performance of the other electrode materials for LIBs and hybrid supercapacitors. MDPI 2020-10-16 /pmc/articles/PMC7603058/ /pubmed/33081310 http://dx.doi.org/10.3390/nano10102049 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Rani, Janardhanan. R.
Thangavel, Ranjith
Kim, Minjae
Lee, Yun Sung
Jang, Jae-Hyung
Ultra-High Energy Density Hybrid Supercapacitors Using MnO(2)/Reduced Graphene Oxide Hybrid Nanoscrolls
title Ultra-High Energy Density Hybrid Supercapacitors Using MnO(2)/Reduced Graphene Oxide Hybrid Nanoscrolls
title_full Ultra-High Energy Density Hybrid Supercapacitors Using MnO(2)/Reduced Graphene Oxide Hybrid Nanoscrolls
title_fullStr Ultra-High Energy Density Hybrid Supercapacitors Using MnO(2)/Reduced Graphene Oxide Hybrid Nanoscrolls
title_full_unstemmed Ultra-High Energy Density Hybrid Supercapacitors Using MnO(2)/Reduced Graphene Oxide Hybrid Nanoscrolls
title_short Ultra-High Energy Density Hybrid Supercapacitors Using MnO(2)/Reduced Graphene Oxide Hybrid Nanoscrolls
title_sort ultra-high energy density hybrid supercapacitors using mno(2)/reduced graphene oxide hybrid nanoscrolls
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7603058/
https://www.ncbi.nlm.nih.gov/pubmed/33081310
http://dx.doi.org/10.3390/nano10102049
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