GO/Co-MOF/NiMnCu nanocomposite as a possible candidate for the future of the supercapacitor generations

Some issues of the electroactive materials in supercapacitor devices, such as low specific surface area, lower electron/ion transportation, and undesirable conductivity, are threatening the current components of supercapacitor devices. Higher surface adsorption sites and specific surface area in the...

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Main Authors: Elham Mazaheri, Ali Bahari, Shahram Ghasemi
Format: Article
Language:English
Published: Semnan University 2024-07-01
Series:Progress in Physics of Applied Materials
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Online Access:https://ppam.semnan.ac.ir/article_8977_02cef1ec93b1156b7ac92025ac85ca0f.pdf
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author Elham Mazaheri
Ali Bahari
Shahram Ghasemi
author_facet Elham Mazaheri
Ali Bahari
Shahram Ghasemi
author_sort Elham Mazaheri
collection DOAJ
description Some issues of the electroactive materials in supercapacitor devices, such as low specific surface area, lower electron/ion transportation, and undesirable conductivity, are threatening the current components of supercapacitor devices. Higher surface adsorption sites and specific surface area in the porous structures could contribute to the enhanced performance. The porous network facilitates higher ion diffusion, higher cyclic retention (which are not discussed in the present work) and improved electrochemical interactions. Improving these factors can cause more occupation sites, more connections between electrode-electrolyte, which means more reaction places for charge storage in the supercapacitor devices. In the present study, we synthesized graphene oxide (GO), Co- metal-organic framework (MOF) / NiMnCu nanocomposite on nickel foam (NF) (GO/ CoMOF/ NiMnCu) samples with solvothermal method. Our findings show that GO/ CoMOF/ NiMnCu sample has higher specific surface area, good porosity than their individual components. Thus, GO/ CoMOF/ NiMnCu sample has much larger specific capacitance, which can affect the sample structure and improve electrical characteristics, yield to more occupation sites and/or specific surface area, enhancement of the carrier (electrons, ions) transportation in the supercapacitor devices. Therefore, here XRD patterns confirmed metal hydroxides, Co-MOF and GO formations, and Brunauer-Emmett-Teller (BET) results revealed higher pore volume which can cause faster and better transportation of ions, or better performance of sample (GO/ CoMOF/ NiMnCu) as a possible material for the next supercapacitor devices.
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spelling doaj-art-f5b45e31eda54ce1a4610fad50c6a34b2025-01-15T08:13:46ZengSemnan UniversityProgress in Physics of Applied Materials2783-47942024-07-014213514410.22075/ppam.2024.34800.11098977GO/Co-MOF/NiMnCu nanocomposite as a possible candidate for the future of the supercapacitor generationsElham Mazaheri0Ali Bahari1Shahram Ghasemi2Department of Solid State Physics, University of Mazandaran, Babolsar, Iran.Department of Solid State Physics, University of Mazandaran, Babolsar, Iran.Faculty of Chemistry, University of Mazandaran, Babolsar, Iran.Some issues of the electroactive materials in supercapacitor devices, such as low specific surface area, lower electron/ion transportation, and undesirable conductivity, are threatening the current components of supercapacitor devices. Higher surface adsorption sites and specific surface area in the porous structures could contribute to the enhanced performance. The porous network facilitates higher ion diffusion, higher cyclic retention (which are not discussed in the present work) and improved electrochemical interactions. Improving these factors can cause more occupation sites, more connections between electrode-electrolyte, which means more reaction places for charge storage in the supercapacitor devices. In the present study, we synthesized graphene oxide (GO), Co- metal-organic framework (MOF) / NiMnCu nanocomposite on nickel foam (NF) (GO/ CoMOF/ NiMnCu) samples with solvothermal method. Our findings show that GO/ CoMOF/ NiMnCu sample has higher specific surface area, good porosity than their individual components. Thus, GO/ CoMOF/ NiMnCu sample has much larger specific capacitance, which can affect the sample structure and improve electrical characteristics, yield to more occupation sites and/or specific surface area, enhancement of the carrier (electrons, ions) transportation in the supercapacitor devices. Therefore, here XRD patterns confirmed metal hydroxides, Co-MOF and GO formations, and Brunauer-Emmett-Teller (BET) results revealed higher pore volume which can cause faster and better transportation of ions, or better performance of sample (GO/ CoMOF/ NiMnCu) as a possible material for the next supercapacitor devices.https://ppam.semnan.ac.ir/article_8977_02cef1ec93b1156b7ac92025ac85ca0f.pdfsupercapacitornanostructuresspecific surface areametal-organic framework (mof)graphene oxide
spellingShingle Elham Mazaheri
Ali Bahari
Shahram Ghasemi
GO/Co-MOF/NiMnCu nanocomposite as a possible candidate for the future of the supercapacitor generations
Progress in Physics of Applied Materials
supercapacitor
nanostructures
specific surface area
metal-organic framework (mof)
graphene oxide
title GO/Co-MOF/NiMnCu nanocomposite as a possible candidate for the future of the supercapacitor generations
title_full GO/Co-MOF/NiMnCu nanocomposite as a possible candidate for the future of the supercapacitor generations
title_fullStr GO/Co-MOF/NiMnCu nanocomposite as a possible candidate for the future of the supercapacitor generations
title_full_unstemmed GO/Co-MOF/NiMnCu nanocomposite as a possible candidate for the future of the supercapacitor generations
title_short GO/Co-MOF/NiMnCu nanocomposite as a possible candidate for the future of the supercapacitor generations
title_sort go co mof nimncu nanocomposite as a possible candidate for the future of the supercapacitor generations
topic supercapacitor
nanostructures
specific surface area
metal-organic framework (mof)
graphene oxide
url https://ppam.semnan.ac.ir/article_8977_02cef1ec93b1156b7ac92025ac85ca0f.pdf
work_keys_str_mv AT elhammazaheri gocomofnimncunanocompositeasapossiblecandidateforthefutureofthesupercapacitorgenerations
AT alibahari gocomofnimncunanocompositeasapossiblecandidateforthefutureofthesupercapacitorgenerations
AT shahramghasemi gocomofnimncunanocompositeasapossiblecandidateforthefutureofthesupercapacitorgenerations