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Ternary 3D reduced graphene oxide/Ni(0.5)Zn(0.5)Fe(2)O(4)/polyindole nanocomposite for supercapacitor electrode application

A facile two-step strategy has been reported for the preparation of a ternary 3D reduced graphene oxide/Ni(0.5)Zn(0.5)Fe(2)O(4)/polyindole nanocomposite (GNP) and this composite is applied as an electrode material for supercapacitor applications. Remarkably, Ni(0.5)Zn(0.5)Fe(2)O(4) nanoparticles (NZ...

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Autores principales: Thadathil, Anjitha, Ismail, Yahya A., Periyat, Pradeepan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9043229/
https://www.ncbi.nlm.nih.gov/pubmed/35492780
http://dx.doi.org/10.1039/d1ra04946a
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author Thadathil, Anjitha
Ismail, Yahya A.
Periyat, Pradeepan
author_facet Thadathil, Anjitha
Ismail, Yahya A.
Periyat, Pradeepan
author_sort Thadathil, Anjitha
collection PubMed
description A facile two-step strategy has been reported for the preparation of a ternary 3D reduced graphene oxide/Ni(0.5)Zn(0.5)Fe(2)O(4)/polyindole nanocomposite (GNP) and this composite is applied as an electrode material for supercapacitor applications. Remarkably, Ni(0.5)Zn(0.5)Fe(2)O(4) nanoparticles (NZF) decorated on reduced graphene oxide (GN2) are achieved by a facile hydrothermal method followed by coating with polyindole (PIN) through an in situ emulsion polymerization process. The structure, porosity, morphology, and thermal stability of the resulting ternary GNP hybrid material were characterized via X-ray diffraction (XRD), Raman spectroscopy, Brunauer–Emmett–Teller (BET) surface area measurements, transmission electron microscopy (TEM), and thermogravimetric analysis (TGA). This combination of hybrid material has a favorable mesoporous structure that enables high exposure of active sites for fast electron transport for supercapacitor applications. We demonstrate here that the ternary GNP hybrid electrode material is capable of delivering a favorable specific capacitance of ∼320 F g(−1) at 0.3 A g(−1) within the potential range from −0.1 to 1 V, with desirable rate stability and excellent cycling stability in the three-electrode system. Furthermore, an asymmetric supercapacitor (ASC) of a two-electrode configuration was fabricated using 3D RGO and GNP as the negative and positive electrodes, respectively. Such a device manifests a favourable C(sp) of 48.9 F g(−1) at 0.5 A g(−1) and retains stability of 84% even after 2000 cycles. This ASC device exhibits a significant energy density of 16.38 W h kg(−1) at a power density of 1784 W kg(−1). The synergistic effects of pseudo and double layer capacitive contributions from PIN and GN2 make this ternary GNP hybrid electrode material of great promise in supercapacitor applications.
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spelling pubmed-90432292022-04-28 Ternary 3D reduced graphene oxide/Ni(0.5)Zn(0.5)Fe(2)O(4)/polyindole nanocomposite for supercapacitor electrode application Thadathil, Anjitha Ismail, Yahya A. Periyat, Pradeepan RSC Adv Chemistry A facile two-step strategy has been reported for the preparation of a ternary 3D reduced graphene oxide/Ni(0.5)Zn(0.5)Fe(2)O(4)/polyindole nanocomposite (GNP) and this composite is applied as an electrode material for supercapacitor applications. Remarkably, Ni(0.5)Zn(0.5)Fe(2)O(4) nanoparticles (NZF) decorated on reduced graphene oxide (GN2) are achieved by a facile hydrothermal method followed by coating with polyindole (PIN) through an in situ emulsion polymerization process. The structure, porosity, morphology, and thermal stability of the resulting ternary GNP hybrid material were characterized via X-ray diffraction (XRD), Raman spectroscopy, Brunauer–Emmett–Teller (BET) surface area measurements, transmission electron microscopy (TEM), and thermogravimetric analysis (TGA). This combination of hybrid material has a favorable mesoporous structure that enables high exposure of active sites for fast electron transport for supercapacitor applications. We demonstrate here that the ternary GNP hybrid electrode material is capable of delivering a favorable specific capacitance of ∼320 F g(−1) at 0.3 A g(−1) within the potential range from −0.1 to 1 V, with desirable rate stability and excellent cycling stability in the three-electrode system. Furthermore, an asymmetric supercapacitor (ASC) of a two-electrode configuration was fabricated using 3D RGO and GNP as the negative and positive electrodes, respectively. Such a device manifests a favourable C(sp) of 48.9 F g(−1) at 0.5 A g(−1) and retains stability of 84% even after 2000 cycles. This ASC device exhibits a significant energy density of 16.38 W h kg(−1) at a power density of 1784 W kg(−1). The synergistic effects of pseudo and double layer capacitive contributions from PIN and GN2 make this ternary GNP hybrid electrode material of great promise in supercapacitor applications. The Royal Society of Chemistry 2021-11-05 /pmc/articles/PMC9043229/ /pubmed/35492780 http://dx.doi.org/10.1039/d1ra04946a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Thadathil, Anjitha
Ismail, Yahya A.
Periyat, Pradeepan
Ternary 3D reduced graphene oxide/Ni(0.5)Zn(0.5)Fe(2)O(4)/polyindole nanocomposite for supercapacitor electrode application
title Ternary 3D reduced graphene oxide/Ni(0.5)Zn(0.5)Fe(2)O(4)/polyindole nanocomposite for supercapacitor electrode application
title_full Ternary 3D reduced graphene oxide/Ni(0.5)Zn(0.5)Fe(2)O(4)/polyindole nanocomposite for supercapacitor electrode application
title_fullStr Ternary 3D reduced graphene oxide/Ni(0.5)Zn(0.5)Fe(2)O(4)/polyindole nanocomposite for supercapacitor electrode application
title_full_unstemmed Ternary 3D reduced graphene oxide/Ni(0.5)Zn(0.5)Fe(2)O(4)/polyindole nanocomposite for supercapacitor electrode application
title_short Ternary 3D reduced graphene oxide/Ni(0.5)Zn(0.5)Fe(2)O(4)/polyindole nanocomposite for supercapacitor electrode application
title_sort ternary 3d reduced graphene oxide/ni(0.5)zn(0.5)fe(2)o(4)/polyindole nanocomposite for supercapacitor electrode application
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9043229/
https://www.ncbi.nlm.nih.gov/pubmed/35492780
http://dx.doi.org/10.1039/d1ra04946a
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