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Nanoporous Hollow Carbon Spheres Derived from Fullerene Assembly as Electrode Materials for High-Performance Supercapacitors

The energy storage performances of supercapacitors are expected to be enhanced by the use of nanostructured hierarchically micro/mesoporous hollow carbon materials based on their ultra-high specific surface areas and rapid diffusion of electrolyte ions through the interconnected channels of their me...

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Autores principales: Shrestha, Lok Kumar, Wei, Zexuan, Subramaniam, Gokulnath, Shrestha, Rekha Goswami, Singh, Ravi, Sathish, Marappan, Ma, Renzhi, Hill, Jonathan P., Nakamura, Junji, Ariga, Katsuhiko
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10005309/
https://www.ncbi.nlm.nih.gov/pubmed/36903824
http://dx.doi.org/10.3390/nano13050946
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author Shrestha, Lok Kumar
Wei, Zexuan
Subramaniam, Gokulnath
Shrestha, Rekha Goswami
Singh, Ravi
Sathish, Marappan
Ma, Renzhi
Hill, Jonathan P.
Nakamura, Junji
Ariga, Katsuhiko
author_facet Shrestha, Lok Kumar
Wei, Zexuan
Subramaniam, Gokulnath
Shrestha, Rekha Goswami
Singh, Ravi
Sathish, Marappan
Ma, Renzhi
Hill, Jonathan P.
Nakamura, Junji
Ariga, Katsuhiko
author_sort Shrestha, Lok Kumar
collection PubMed
description The energy storage performances of supercapacitors are expected to be enhanced by the use of nanostructured hierarchically micro/mesoporous hollow carbon materials based on their ultra-high specific surface areas and rapid diffusion of electrolyte ions through the interconnected channels of their mesoporous structures. In this work, we report the electrochemical supercapacitance properties of hollow carbon spheres prepared by high-temperature carbonization of self-assembled fullerene-ethylenediamine hollow spheres (FE-HS). FE-HS, having an average external diameter of 290 nm, an internal diameter of 65 nm, and a wall thickness of 225 nm, were prepared by using the dynamic liquid-liquid interfacial precipitation (DLLIP) method at ambient conditions of temperature and pressure. High temperature carbonization (at 700, 900, and 1100 °C) of the FE-HS yielded nanoporous (micro/mesoporous) hollow carbon spheres with large surface areas (612 to 1616 m(2) g(−1)) and large pore volumes (0.925 to 1.346 cm(3) g(−1)) dependent on the temperature applied. The sample obtained by carbonization of FE-HS at 900 °C (FE-HS_900) displayed optimum surface area and exhibited remarkable electrochemical electrical double-layer capacitance properties in aq. 1 M sulfuric acid due to its well-developed porosity, interconnected pore structure, and large surface area. For a three-electrode cell setup, a specific capacitance of 293 F g(−1) at a 1 A g(−1) current density, which is approximately 4 times greater than the specific capacitance of the starting material, FE-HS. The symmetric supercapacitor cell was assembled using FE-HS_900 and attained 164 F g(−1) at 1 A g(−1) with sustained 50% capacitance at 10 A g(−1) accompanied by 96% cycle life and 98% coulombic efficiency after 10,000 consecutive charge/discharge cycles. The results demonstrate the excellent potential of these fullerene assemblies in the fabrication of nanoporous carbon materials with the extensive surface areas required for high-performance energy storage supercapacitor applications.
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spelling pubmed-100053092023-03-11 Nanoporous Hollow Carbon Spheres Derived from Fullerene Assembly as Electrode Materials for High-Performance Supercapacitors Shrestha, Lok Kumar Wei, Zexuan Subramaniam, Gokulnath Shrestha, Rekha Goswami Singh, Ravi Sathish, Marappan Ma, Renzhi Hill, Jonathan P. Nakamura, Junji Ariga, Katsuhiko Nanomaterials (Basel) Article The energy storage performances of supercapacitors are expected to be enhanced by the use of nanostructured hierarchically micro/mesoporous hollow carbon materials based on their ultra-high specific surface areas and rapid diffusion of electrolyte ions through the interconnected channels of their mesoporous structures. In this work, we report the electrochemical supercapacitance properties of hollow carbon spheres prepared by high-temperature carbonization of self-assembled fullerene-ethylenediamine hollow spheres (FE-HS). FE-HS, having an average external diameter of 290 nm, an internal diameter of 65 nm, and a wall thickness of 225 nm, were prepared by using the dynamic liquid-liquid interfacial precipitation (DLLIP) method at ambient conditions of temperature and pressure. High temperature carbonization (at 700, 900, and 1100 °C) of the FE-HS yielded nanoporous (micro/mesoporous) hollow carbon spheres with large surface areas (612 to 1616 m(2) g(−1)) and large pore volumes (0.925 to 1.346 cm(3) g(−1)) dependent on the temperature applied. The sample obtained by carbonization of FE-HS at 900 °C (FE-HS_900) displayed optimum surface area and exhibited remarkable electrochemical electrical double-layer capacitance properties in aq. 1 M sulfuric acid due to its well-developed porosity, interconnected pore structure, and large surface area. For a three-electrode cell setup, a specific capacitance of 293 F g(−1) at a 1 A g(−1) current density, which is approximately 4 times greater than the specific capacitance of the starting material, FE-HS. The symmetric supercapacitor cell was assembled using FE-HS_900 and attained 164 F g(−1) at 1 A g(−1) with sustained 50% capacitance at 10 A g(−1) accompanied by 96% cycle life and 98% coulombic efficiency after 10,000 consecutive charge/discharge cycles. The results demonstrate the excellent potential of these fullerene assemblies in the fabrication of nanoporous carbon materials with the extensive surface areas required for high-performance energy storage supercapacitor applications. MDPI 2023-03-05 /pmc/articles/PMC10005309/ /pubmed/36903824 http://dx.doi.org/10.3390/nano13050946 Text en © 2023 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
Shrestha, Lok Kumar
Wei, Zexuan
Subramaniam, Gokulnath
Shrestha, Rekha Goswami
Singh, Ravi
Sathish, Marappan
Ma, Renzhi
Hill, Jonathan P.
Nakamura, Junji
Ariga, Katsuhiko
Nanoporous Hollow Carbon Spheres Derived from Fullerene Assembly as Electrode Materials for High-Performance Supercapacitors
title Nanoporous Hollow Carbon Spheres Derived from Fullerene Assembly as Electrode Materials for High-Performance Supercapacitors
title_full Nanoporous Hollow Carbon Spheres Derived from Fullerene Assembly as Electrode Materials for High-Performance Supercapacitors
title_fullStr Nanoporous Hollow Carbon Spheres Derived from Fullerene Assembly as Electrode Materials for High-Performance Supercapacitors
title_full_unstemmed Nanoporous Hollow Carbon Spheres Derived from Fullerene Assembly as Electrode Materials for High-Performance Supercapacitors
title_short Nanoporous Hollow Carbon Spheres Derived from Fullerene Assembly as Electrode Materials for High-Performance Supercapacitors
title_sort nanoporous hollow carbon spheres derived from fullerene assembly as electrode materials for high-performance supercapacitors
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10005309/
https://www.ncbi.nlm.nih.gov/pubmed/36903824
http://dx.doi.org/10.3390/nano13050946
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