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Nickel–cobalt hydroxide: a positive electrode for supercapacitor applications

So far, numerous metal oxides and metal hydroxides have been reported as an electrode material, a critical component in supercapacitors that determines the operation window of the capacitor. Among them, nickel and cobalt-based materials are studied extensively due to their high capacitance nature. H...

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Autores principales: Vidhya, M. Sangeetha, Ravi, G., Yuvakkumar, R., Velauthapillai, Dhayalan, Thambidurai, M., Dang, Cuong, Saravanakumar, B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9054063/
https://www.ncbi.nlm.nih.gov/pubmed/35515465
http://dx.doi.org/10.1039/d0ra01890b
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author Vidhya, M. Sangeetha
Ravi, G.
Yuvakkumar, R.
Velauthapillai, Dhayalan
Thambidurai, M.
Dang, Cuong
Saravanakumar, B.
author_facet Vidhya, M. Sangeetha
Ravi, G.
Yuvakkumar, R.
Velauthapillai, Dhayalan
Thambidurai, M.
Dang, Cuong
Saravanakumar, B.
author_sort Vidhya, M. Sangeetha
collection PubMed
description So far, numerous metal oxides and metal hydroxides have been reported as an electrode material, a critical component in supercapacitors that determines the operation window of the capacitor. Among them, nickel and cobalt-based materials are studied extensively due to their high capacitance nature. However, the pure phase of hydroxides does not show a significant effect on cycle life. The observed XRD results revealed the phase structures of the obtained Ni(OH)(2) and Co–Ni(OH)(2) hydroxides. The congruency of the peak positions of Ni(OH)(2) and Co–Ni(OH)(2) is attributed to the homogeneity of the physical and chemical properties of the as-prepared products. The obtained results from XPS analysis indicated the presence of Co and the chemical states of the as-prepared composite active electrode materials. The SEM analysis revealed that the sample had the configuration of agglomerated particle nature. Moreover, the morphology and structure of the hydroxide materials impacted their charge storage properties. Thus, in this study, Ni(OH)(2) and Co–Ni(OH)(2) composite materials were produced via a hydrothermal method to obtain controllable morphology. The electrochemical properties were studied. It was observed that both the samples experienced a pseudocapacitive behavior, which was confirmed from the CV curves. For the electrode materials Ni(OH)(2) and Co–Ni(OH)(2), the specific capacitance (C(s)) of about 1038 F g(−1) and 1366 F g(−1), respectively, were observed at the current density of 1.5 A g(−1). The Ni–Co(OH)(2) composite showed high capacitance when compared with Ni(OH)(2). The cycle index was determined for the electrode materials and it indicated excellent stability. The stability of the cell was investigated up to 2000 cycles, and the cell showed excellent retention of 96.26%.
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spelling pubmed-90540632022-05-04 Nickel–cobalt hydroxide: a positive electrode for supercapacitor applications Vidhya, M. Sangeetha Ravi, G. Yuvakkumar, R. Velauthapillai, Dhayalan Thambidurai, M. Dang, Cuong Saravanakumar, B. RSC Adv Chemistry So far, numerous metal oxides and metal hydroxides have been reported as an electrode material, a critical component in supercapacitors that determines the operation window of the capacitor. Among them, nickel and cobalt-based materials are studied extensively due to their high capacitance nature. However, the pure phase of hydroxides does not show a significant effect on cycle life. The observed XRD results revealed the phase structures of the obtained Ni(OH)(2) and Co–Ni(OH)(2) hydroxides. The congruency of the peak positions of Ni(OH)(2) and Co–Ni(OH)(2) is attributed to the homogeneity of the physical and chemical properties of the as-prepared products. The obtained results from XPS analysis indicated the presence of Co and the chemical states of the as-prepared composite active electrode materials. The SEM analysis revealed that the sample had the configuration of agglomerated particle nature. Moreover, the morphology and structure of the hydroxide materials impacted their charge storage properties. Thus, in this study, Ni(OH)(2) and Co–Ni(OH)(2) composite materials were produced via a hydrothermal method to obtain controllable morphology. The electrochemical properties were studied. It was observed that both the samples experienced a pseudocapacitive behavior, which was confirmed from the CV curves. For the electrode materials Ni(OH)(2) and Co–Ni(OH)(2), the specific capacitance (C(s)) of about 1038 F g(−1) and 1366 F g(−1), respectively, were observed at the current density of 1.5 A g(−1). The Ni–Co(OH)(2) composite showed high capacitance when compared with Ni(OH)(2). The cycle index was determined for the electrode materials and it indicated excellent stability. The stability of the cell was investigated up to 2000 cycles, and the cell showed excellent retention of 96.26%. The Royal Society of Chemistry 2020-05-21 /pmc/articles/PMC9054063/ /pubmed/35515465 http://dx.doi.org/10.1039/d0ra01890b Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Vidhya, M. Sangeetha
Ravi, G.
Yuvakkumar, R.
Velauthapillai, Dhayalan
Thambidurai, M.
Dang, Cuong
Saravanakumar, B.
Nickel–cobalt hydroxide: a positive electrode for supercapacitor applications
title Nickel–cobalt hydroxide: a positive electrode for supercapacitor applications
title_full Nickel–cobalt hydroxide: a positive electrode for supercapacitor applications
title_fullStr Nickel–cobalt hydroxide: a positive electrode for supercapacitor applications
title_full_unstemmed Nickel–cobalt hydroxide: a positive electrode for supercapacitor applications
title_short Nickel–cobalt hydroxide: a positive electrode for supercapacitor applications
title_sort nickel–cobalt hydroxide: a positive electrode for supercapacitor applications
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9054063/
https://www.ncbi.nlm.nih.gov/pubmed/35515465
http://dx.doi.org/10.1039/d0ra01890b
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