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Phase transformation in tungsten oxide nanoplates as a function of post-annealing temperature and its electrochemical influence on energy storage

The morphology and crystal structure of electrode materials have an enormous impact on their electrochemical properties for employment in supercapacitors for various applications. In this study, the transformations of the crystal structure of WO(3)·H(2)O nanoplates were conducted by post-annealing a...

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Autores principales: Gupta, Shobhnath P., Nishad, Harishchandra H., Chakane, Sanjay D., Gosavi, Suresh W., Late, Dattatray J., Walke, Pravin S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9416815/
https://www.ncbi.nlm.nih.gov/pubmed/36132928
http://dx.doi.org/10.1039/d0na00423e
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author Gupta, Shobhnath P.
Nishad, Harishchandra H.
Chakane, Sanjay D.
Gosavi, Suresh W.
Late, Dattatray J.
Walke, Pravin S.
author_facet Gupta, Shobhnath P.
Nishad, Harishchandra H.
Chakane, Sanjay D.
Gosavi, Suresh W.
Late, Dattatray J.
Walke, Pravin S.
author_sort Gupta, Shobhnath P.
collection PubMed
description The morphology and crystal structure of electrode materials have an enormous impact on their electrochemical properties for employment in supercapacitors for various applications. In this study, the transformations of the crystal structure of WO(3)·H(2)O nanoplates were conducted by post-annealing at 200 °C and 400 °C. The morphological and structural evolution of the electrodes was studied via FEG-SEM, HRTEM, FTIR, XRD, and Raman spectroscopy. The phase transition and enhanced degree of crystallinity were observed with increasing temperature. The orthorhombic structures of the hydrate WO(3)·H(2)O (W80), the mixed-phase with mesoporous structure (W200), and finally the monoclinic phase of WO(3) structures (W400) were achieved at annealing temperatures of 80 °C, 200 °C, and 400 °C respectively. The electrochemical performance of electrode W200 showed the highest specific capacitance of 606 F g(−1) as compared to electrode W80 (361 F g(−1)), and was two-fold greater than electrode W400 (302 F g(−1)) at a current density of 1 A g(−1). Moreover, electrode W200 exhibited excellent cyclic stability of 89% at an ultrahigh scan rate of 100 mV s(−1) after 4000 cycles. The results highlight that the mixed-phase WO(3) nanoplates would make a suitable electrode material for supercapacitors with desired electrochemical features.
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spelling pubmed-94168152022-09-20 Phase transformation in tungsten oxide nanoplates as a function of post-annealing temperature and its electrochemical influence on energy storage Gupta, Shobhnath P. Nishad, Harishchandra H. Chakane, Sanjay D. Gosavi, Suresh W. Late, Dattatray J. Walke, Pravin S. Nanoscale Adv Chemistry The morphology and crystal structure of electrode materials have an enormous impact on their electrochemical properties for employment in supercapacitors for various applications. In this study, the transformations of the crystal structure of WO(3)·H(2)O nanoplates were conducted by post-annealing at 200 °C and 400 °C. The morphological and structural evolution of the electrodes was studied via FEG-SEM, HRTEM, FTIR, XRD, and Raman spectroscopy. The phase transition and enhanced degree of crystallinity were observed with increasing temperature. The orthorhombic structures of the hydrate WO(3)·H(2)O (W80), the mixed-phase with mesoporous structure (W200), and finally the monoclinic phase of WO(3) structures (W400) were achieved at annealing temperatures of 80 °C, 200 °C, and 400 °C respectively. The electrochemical performance of electrode W200 showed the highest specific capacitance of 606 F g(−1) as compared to electrode W80 (361 F g(−1)), and was two-fold greater than electrode W400 (302 F g(−1)) at a current density of 1 A g(−1). Moreover, electrode W200 exhibited excellent cyclic stability of 89% at an ultrahigh scan rate of 100 mV s(−1) after 4000 cycles. The results highlight that the mixed-phase WO(3) nanoplates would make a suitable electrode material for supercapacitors with desired electrochemical features. RSC 2020-08-06 /pmc/articles/PMC9416815/ /pubmed/36132928 http://dx.doi.org/10.1039/d0na00423e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Gupta, Shobhnath P.
Nishad, Harishchandra H.
Chakane, Sanjay D.
Gosavi, Suresh W.
Late, Dattatray J.
Walke, Pravin S.
Phase transformation in tungsten oxide nanoplates as a function of post-annealing temperature and its electrochemical influence on energy storage
title Phase transformation in tungsten oxide nanoplates as a function of post-annealing temperature and its electrochemical influence on energy storage
title_full Phase transformation in tungsten oxide nanoplates as a function of post-annealing temperature and its electrochemical influence on energy storage
title_fullStr Phase transformation in tungsten oxide nanoplates as a function of post-annealing temperature and its electrochemical influence on energy storage
title_full_unstemmed Phase transformation in tungsten oxide nanoplates as a function of post-annealing temperature and its electrochemical influence on energy storage
title_short Phase transformation in tungsten oxide nanoplates as a function of post-annealing temperature and its electrochemical influence on energy storage
title_sort phase transformation in tungsten oxide nanoplates as a function of post-annealing temperature and its electrochemical influence on energy storage
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9416815/
https://www.ncbi.nlm.nih.gov/pubmed/36132928
http://dx.doi.org/10.1039/d0na00423e
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