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The Design of ZnO Nanorod Arrays Coated with MnOx for High Electrochemical Stability of a Pseudocapacitor Electrode

Tremendous efforts have been made on the development of unique electrochemical capacitors or pseudocapacitors due to the overgrowing electrical energy demand. Here, the authors report a new and simple strategy for fabricating hybrid MnOx-coated ZnO nanorod arrays. First, the vertically aligned ZnO n...

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Autores principales: Chen, Hsiang-Chun, Lyu, Yang-Ru, Fang, Alex, Lee, Gang-Juan, Karuppasamy, Lakshmanan, Wu, Jerry J., Lin, Chung-Kwei, Anandan, Sambandam, Chen, Chin-Yi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7153262/
https://www.ncbi.nlm.nih.gov/pubmed/32155885
http://dx.doi.org/10.3390/nano10030475
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author Chen, Hsiang-Chun
Lyu, Yang-Ru
Fang, Alex
Lee, Gang-Juan
Karuppasamy, Lakshmanan
Wu, Jerry J.
Lin, Chung-Kwei
Anandan, Sambandam
Chen, Chin-Yi
author_facet Chen, Hsiang-Chun
Lyu, Yang-Ru
Fang, Alex
Lee, Gang-Juan
Karuppasamy, Lakshmanan
Wu, Jerry J.
Lin, Chung-Kwei
Anandan, Sambandam
Chen, Chin-Yi
author_sort Chen, Hsiang-Chun
collection PubMed
description Tremendous efforts have been made on the development of unique electrochemical capacitors or pseudocapacitors due to the overgrowing electrical energy demand. Here, the authors report a new and simple strategy for fabricating hybrid MnOx-coated ZnO nanorod arrays. First, the vertically aligned ZnO nanorods were prepared by chemical bath deposition (CBD) as a template providing a large surface area for active material deposition. The manganese oxide was subsequently coated onto the surface of the ZnO nanorods to form a hybrid MnOx-coated ZnO nanostructure by anodic deposition in a manganese acetate (MnA)-containing aqueous solution. The hybrid structure of MnOx-coated ZnO nanorod arrays exhibits a large surface area and high conductivity, essential for enhancing the faradaic processes across the interface and improving redox reactions at active MnOx sites. A certain concentration of the deposition solution was selected for the MnOx coating, which was studied as a function of deposition time. Cyclic voltammetry (CV) curves showed that the specific capacitance (SC) of the MnOx-coated ZnO nanostructure was 222 F/g for the deposition times at 10 s when the concentration of MnA solution was 0.25 M. The unique hybrid nanostructures also exhibit excellent cycling stability with >97.5% capacitance retention after 1200 CV cycles. The proposed simple and cost-effective method of fabricating hybrid nanostructures may pave the way for mass production of future intelligent and efficient electrochemical energy storage devices.
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spelling pubmed-71532622020-04-20 The Design of ZnO Nanorod Arrays Coated with MnOx for High Electrochemical Stability of a Pseudocapacitor Electrode Chen, Hsiang-Chun Lyu, Yang-Ru Fang, Alex Lee, Gang-Juan Karuppasamy, Lakshmanan Wu, Jerry J. Lin, Chung-Kwei Anandan, Sambandam Chen, Chin-Yi Nanomaterials (Basel) Article Tremendous efforts have been made on the development of unique electrochemical capacitors or pseudocapacitors due to the overgrowing electrical energy demand. Here, the authors report a new and simple strategy for fabricating hybrid MnOx-coated ZnO nanorod arrays. First, the vertically aligned ZnO nanorods were prepared by chemical bath deposition (CBD) as a template providing a large surface area for active material deposition. The manganese oxide was subsequently coated onto the surface of the ZnO nanorods to form a hybrid MnOx-coated ZnO nanostructure by anodic deposition in a manganese acetate (MnA)-containing aqueous solution. The hybrid structure of MnOx-coated ZnO nanorod arrays exhibits a large surface area and high conductivity, essential for enhancing the faradaic processes across the interface and improving redox reactions at active MnOx sites. A certain concentration of the deposition solution was selected for the MnOx coating, which was studied as a function of deposition time. Cyclic voltammetry (CV) curves showed that the specific capacitance (SC) of the MnOx-coated ZnO nanostructure was 222 F/g for the deposition times at 10 s when the concentration of MnA solution was 0.25 M. The unique hybrid nanostructures also exhibit excellent cycling stability with >97.5% capacitance retention after 1200 CV cycles. The proposed simple and cost-effective method of fabricating hybrid nanostructures may pave the way for mass production of future intelligent and efficient electrochemical energy storage devices. MDPI 2020-03-06 /pmc/articles/PMC7153262/ /pubmed/32155885 http://dx.doi.org/10.3390/nano10030475 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
Chen, Hsiang-Chun
Lyu, Yang-Ru
Fang, Alex
Lee, Gang-Juan
Karuppasamy, Lakshmanan
Wu, Jerry J.
Lin, Chung-Kwei
Anandan, Sambandam
Chen, Chin-Yi
The Design of ZnO Nanorod Arrays Coated with MnOx for High Electrochemical Stability of a Pseudocapacitor Electrode
title The Design of ZnO Nanorod Arrays Coated with MnOx for High Electrochemical Stability of a Pseudocapacitor Electrode
title_full The Design of ZnO Nanorod Arrays Coated with MnOx for High Electrochemical Stability of a Pseudocapacitor Electrode
title_fullStr The Design of ZnO Nanorod Arrays Coated with MnOx for High Electrochemical Stability of a Pseudocapacitor Electrode
title_full_unstemmed The Design of ZnO Nanorod Arrays Coated with MnOx for High Electrochemical Stability of a Pseudocapacitor Electrode
title_short The Design of ZnO Nanorod Arrays Coated with MnOx for High Electrochemical Stability of a Pseudocapacitor Electrode
title_sort design of zno nanorod arrays coated with mnox for high electrochemical stability of a pseudocapacitor electrode
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7153262/
https://www.ncbi.nlm.nih.gov/pubmed/32155885
http://dx.doi.org/10.3390/nano10030475
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