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NiCo(2)O(4)/RGO Hybrid Nanostructures on Surface-Modified Ni Core for Flexible Wire-Shaped Supercapacitor

In this work, we report surface-modified nickel (Ni) wire/NiCo(2)O(4)/reduced graphene oxide (Ni/NCO/RGO) electrodes fabricated by a combination of facile solvothermal and hydrothermal deposition methods for wire-shaped supercapacitor application. The effect of Ni wire etching on the microstructural...

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Autores principales: Shewale, Prashant Shivaji, Yun, Kwang-Seok
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8066179/
https://www.ncbi.nlm.nih.gov/pubmed/33810501
http://dx.doi.org/10.3390/nano11040852
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author Shewale, Prashant Shivaji
Yun, Kwang-Seok
author_facet Shewale, Prashant Shivaji
Yun, Kwang-Seok
author_sort Shewale, Prashant Shivaji
collection PubMed
description In this work, we report surface-modified nickel (Ni) wire/NiCo(2)O(4)/reduced graphene oxide (Ni/NCO/RGO) electrodes fabricated by a combination of facile solvothermal and hydrothermal deposition methods for wire-shaped supercapacitor application. The effect of Ni wire etching on the microstructural, surface morphological and electrochemical properties of Ni/NCO/RGO electrodes was investigated in detail. On account of the improved hybrid nanostructure and the synergistic effect between spinel-NiCo(2)O(4) hollow microspheres and RGO nanoflakes, the electrode obtained from Ni wire etched for 10 min, i.e., Ni(10)/NCO/RGO exhibits the lowest initial equivalent resistance (1.68 Ω), and displays a good rate capability with a volumetric capacitance (2.64 F/cm(3)) and areal capacitance (25.3 mF/cm(2)). Additionally, the volumetric specific capacitance calculated by considering only active material volume was found to be as high as 253 F/cm(3). It is revealed that the diffusion-controlled process related to faradaic volume processes (battery type) contributed significantly to the surface-controlled process of the Ni(10)/NCO/RGO electrode compared to other electrodes that led to the optimum electrochemical performance. Furthermore, the wire-shaped supercapacitor (WSC) was fabricated by assembling two optimum electrodes in-twisted structure with gel electrolyte and the device exhibited 10 μWh/cm(3) (54 mWh/kg) energy density and 4.95 mW/cm(3) (27 W/kg) power density at 200 μA. Finally, the repeatability, flexibility, and scalability of WSCs were successfully demonstrated at various device lengths and bending angles.
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spelling pubmed-80661792021-04-25 NiCo(2)O(4)/RGO Hybrid Nanostructures on Surface-Modified Ni Core for Flexible Wire-Shaped Supercapacitor Shewale, Prashant Shivaji Yun, Kwang-Seok Nanomaterials (Basel) Article In this work, we report surface-modified nickel (Ni) wire/NiCo(2)O(4)/reduced graphene oxide (Ni/NCO/RGO) electrodes fabricated by a combination of facile solvothermal and hydrothermal deposition methods for wire-shaped supercapacitor application. The effect of Ni wire etching on the microstructural, surface morphological and electrochemical properties of Ni/NCO/RGO electrodes was investigated in detail. On account of the improved hybrid nanostructure and the synergistic effect between spinel-NiCo(2)O(4) hollow microspheres and RGO nanoflakes, the electrode obtained from Ni wire etched for 10 min, i.e., Ni(10)/NCO/RGO exhibits the lowest initial equivalent resistance (1.68 Ω), and displays a good rate capability with a volumetric capacitance (2.64 F/cm(3)) and areal capacitance (25.3 mF/cm(2)). Additionally, the volumetric specific capacitance calculated by considering only active material volume was found to be as high as 253 F/cm(3). It is revealed that the diffusion-controlled process related to faradaic volume processes (battery type) contributed significantly to the surface-controlled process of the Ni(10)/NCO/RGO electrode compared to other electrodes that led to the optimum electrochemical performance. Furthermore, the wire-shaped supercapacitor (WSC) was fabricated by assembling two optimum electrodes in-twisted structure with gel electrolyte and the device exhibited 10 μWh/cm(3) (54 mWh/kg) energy density and 4.95 mW/cm(3) (27 W/kg) power density at 200 μA. Finally, the repeatability, flexibility, and scalability of WSCs were successfully demonstrated at various device lengths and bending angles. MDPI 2021-03-26 /pmc/articles/PMC8066179/ /pubmed/33810501 http://dx.doi.org/10.3390/nano11040852 Text en © 2021 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 (http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) ).
spellingShingle Article
Shewale, Prashant Shivaji
Yun, Kwang-Seok
NiCo(2)O(4)/RGO Hybrid Nanostructures on Surface-Modified Ni Core for Flexible Wire-Shaped Supercapacitor
title NiCo(2)O(4)/RGO Hybrid Nanostructures on Surface-Modified Ni Core for Flexible Wire-Shaped Supercapacitor
title_full NiCo(2)O(4)/RGO Hybrid Nanostructures on Surface-Modified Ni Core for Flexible Wire-Shaped Supercapacitor
title_fullStr NiCo(2)O(4)/RGO Hybrid Nanostructures on Surface-Modified Ni Core for Flexible Wire-Shaped Supercapacitor
title_full_unstemmed NiCo(2)O(4)/RGO Hybrid Nanostructures on Surface-Modified Ni Core for Flexible Wire-Shaped Supercapacitor
title_short NiCo(2)O(4)/RGO Hybrid Nanostructures on Surface-Modified Ni Core for Flexible Wire-Shaped Supercapacitor
title_sort nico(2)o(4)/rgo hybrid nanostructures on surface-modified ni core for flexible wire-shaped supercapacitor
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8066179/
https://www.ncbi.nlm.nih.gov/pubmed/33810501
http://dx.doi.org/10.3390/nano11040852
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