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CoNiSe(2) Nanostructures for Clean Energy Production

[Image: see text] Comparative investigation of the electrochemical oxygen evolution reaction (OER) activity for clean energy production was performed by fabricating three different electrodes, namely, NiSe(2), CoSe(2), and CoNiSe(2), synthesized by hydrothermal treatment. Cubic, orthorhombic, and he...

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Autores principales: Jansi Rani, Balasubramanian, Ravi, Ganesan, Yuvakkumar, Rathinam, Saravanakumar, Balasubramaniam, Thambidurai, Mariyappan, Dang, Cuong, Velauthapillai, Dhayalan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7315609/
https://www.ncbi.nlm.nih.gov/pubmed/32596607
http://dx.doi.org/10.1021/acsomega.0c01476
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author Jansi Rani, Balasubramanian
Ravi, Ganesan
Yuvakkumar, Rathinam
Saravanakumar, Balasubramaniam
Thambidurai, Mariyappan
Dang, Cuong
Velauthapillai, Dhayalan
author_facet Jansi Rani, Balasubramanian
Ravi, Ganesan
Yuvakkumar, Rathinam
Saravanakumar, Balasubramaniam
Thambidurai, Mariyappan
Dang, Cuong
Velauthapillai, Dhayalan
author_sort Jansi Rani, Balasubramanian
collection PubMed
description [Image: see text] Comparative investigation of the electrochemical oxygen evolution reaction (OER) activity for clean energy production was performed by fabricating three different electrodes, namely, NiSe(2), CoSe(2), and CoNiSe(2), synthesized by hydrothermal treatment. Cubic, orthorhombic, and hexagonal structures of NiSe(2), CoSe(2), and CoNiSe(2) were confirmed by X-ray diffraction (XRD) and also by other characterization studies. Perfect nanospheres, combination of distorted nanospheres and tiny nanoparticles, and sharp-edge nanostructures of NiSe(2), CoSe(2), and CoNiSe(2) were explored by surface morphological images. Higher OER activity of the binary CoNiSe(2) electrode was achieved as 188 mA/g current density with a comparatively low overpotential of 234 mV along with higher conductivity and low charge transfer resistance when compared to its unary NiSe(2) and CoSe(2) electrodes. A low Tafel slope value of 82 mV/dec was also achieved for the same binary CoNiSe(2) electrode in a half-cell configuration. The overall 100% retention achieved for all of the fabricated electrodes in a stability test of OER activity suggested that the excellent optimum condition was obtained during the synthesis. This could definitely be a revelation in the synthesis of novel binary combinations of affordable metal selenides for clean energy production.
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spelling pubmed-73156092020-06-26 CoNiSe(2) Nanostructures for Clean Energy Production Jansi Rani, Balasubramanian Ravi, Ganesan Yuvakkumar, Rathinam Saravanakumar, Balasubramaniam Thambidurai, Mariyappan Dang, Cuong Velauthapillai, Dhayalan ACS Omega [Image: see text] Comparative investigation of the electrochemical oxygen evolution reaction (OER) activity for clean energy production was performed by fabricating three different electrodes, namely, NiSe(2), CoSe(2), and CoNiSe(2), synthesized by hydrothermal treatment. Cubic, orthorhombic, and hexagonal structures of NiSe(2), CoSe(2), and CoNiSe(2) were confirmed by X-ray diffraction (XRD) and also by other characterization studies. Perfect nanospheres, combination of distorted nanospheres and tiny nanoparticles, and sharp-edge nanostructures of NiSe(2), CoSe(2), and CoNiSe(2) were explored by surface morphological images. Higher OER activity of the binary CoNiSe(2) electrode was achieved as 188 mA/g current density with a comparatively low overpotential of 234 mV along with higher conductivity and low charge transfer resistance when compared to its unary NiSe(2) and CoSe(2) electrodes. A low Tafel slope value of 82 mV/dec was also achieved for the same binary CoNiSe(2) electrode in a half-cell configuration. The overall 100% retention achieved for all of the fabricated electrodes in a stability test of OER activity suggested that the excellent optimum condition was obtained during the synthesis. This could definitely be a revelation in the synthesis of novel binary combinations of affordable metal selenides for clean energy production. American Chemical Society 2020-06-09 /pmc/articles/PMC7315609/ /pubmed/32596607 http://dx.doi.org/10.1021/acsomega.0c01476 Text en Copyright © 2020 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Jansi Rani, Balasubramanian
Ravi, Ganesan
Yuvakkumar, Rathinam
Saravanakumar, Balasubramaniam
Thambidurai, Mariyappan
Dang, Cuong
Velauthapillai, Dhayalan
CoNiSe(2) Nanostructures for Clean Energy Production
title CoNiSe(2) Nanostructures for Clean Energy Production
title_full CoNiSe(2) Nanostructures for Clean Energy Production
title_fullStr CoNiSe(2) Nanostructures for Clean Energy Production
title_full_unstemmed CoNiSe(2) Nanostructures for Clean Energy Production
title_short CoNiSe(2) Nanostructures for Clean Energy Production
title_sort conise(2) nanostructures for clean energy production
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7315609/
https://www.ncbi.nlm.nih.gov/pubmed/32596607
http://dx.doi.org/10.1021/acsomega.0c01476
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