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Synthesis of manganese molybdate/MWCNT nanostructure composite with a simple approach for supercapacitor applications

Recently, magnesium molybdate materials have attracted scientific attention for application in supercapacitor devices due to advantages like low synthesis cost and good redox reactions. Nevertheless, these materials endure low electrical conductivity leading to inferior electrochemical performance....

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Autores principales: Yousefipour, Kian, Sarraf-Mamoory, Rasoul, Mollayousefi, Shadi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9520677/
https://www.ncbi.nlm.nih.gov/pubmed/36320277
http://dx.doi.org/10.1039/d2ra04691a
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author Yousefipour, Kian
Sarraf-Mamoory, Rasoul
Mollayousefi, Shadi
author_facet Yousefipour, Kian
Sarraf-Mamoory, Rasoul
Mollayousefi, Shadi
author_sort Yousefipour, Kian
collection PubMed
description Recently, magnesium molybdate materials have attracted scientific attention for application in supercapacitor devices due to advantages like low synthesis cost and good redox reactions. Nevertheless, these materials endure low electrical conductivity leading to inferior electrochemical performance. To eliminate this drawback, we prepare a composite powder containing magnesium molybdate and functionalized carbon nanotubes (MMO/C) using a simple process to improve the supercapacitive properties. The results proved an electrostatic interaction between the two components of the composite powder, which contains 18–30 nm magnesium molybdate nanoparticles. A crystal model related to magnesium molybdate powder (MMO) was simulated, illustrating that MnO(6) octahedra are formed next to MoO(4) tetrahedra. The mesoporous structure of both powders was confirmed whereas the specific surface area of the MMO was enhanced by 69.9% to 36.86 m(2) g(−1) in the MMO/C powder with more electroactive sites. The higher electrical conductivity of the MMO/C electrode was proved using electrochemical impedance spectroscopy (EIS) results, with the MMO/C electrode achieving a specific capacitance of 571 F g(−1) at 1 A g(−1) current density, improved by more than 4.5 times that of the MMO. Furthermore, the rate performance and cycling stability of the MMO/C electrode reached 87% and 85.2%, respectively. Finally, a two-electrode energy storage device (MMO/C//AC) was assembled. It reveals a specific capacitance of 94.7 F g(−1), a maximum energy density of 29.6 W h kg(−1) at a power density of 660.1 W kg(−1), and cycling performance of 84.3% after 2000 cycles. As a result, the resulting data demonstrate that the MMO/C electroactive material has promising abilities in capacitive energy storage systems.
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spelling pubmed-95206772022-10-31 Synthesis of manganese molybdate/MWCNT nanostructure composite with a simple approach for supercapacitor applications Yousefipour, Kian Sarraf-Mamoory, Rasoul Mollayousefi, Shadi RSC Adv Chemistry Recently, magnesium molybdate materials have attracted scientific attention for application in supercapacitor devices due to advantages like low synthesis cost and good redox reactions. Nevertheless, these materials endure low electrical conductivity leading to inferior electrochemical performance. To eliminate this drawback, we prepare a composite powder containing magnesium molybdate and functionalized carbon nanotubes (MMO/C) using a simple process to improve the supercapacitive properties. The results proved an electrostatic interaction between the two components of the composite powder, which contains 18–30 nm magnesium molybdate nanoparticles. A crystal model related to magnesium molybdate powder (MMO) was simulated, illustrating that MnO(6) octahedra are formed next to MoO(4) tetrahedra. The mesoporous structure of both powders was confirmed whereas the specific surface area of the MMO was enhanced by 69.9% to 36.86 m(2) g(−1) in the MMO/C powder with more electroactive sites. The higher electrical conductivity of the MMO/C electrode was proved using electrochemical impedance spectroscopy (EIS) results, with the MMO/C electrode achieving a specific capacitance of 571 F g(−1) at 1 A g(−1) current density, improved by more than 4.5 times that of the MMO. Furthermore, the rate performance and cycling stability of the MMO/C electrode reached 87% and 85.2%, respectively. Finally, a two-electrode energy storage device (MMO/C//AC) was assembled. It reveals a specific capacitance of 94.7 F g(−1), a maximum energy density of 29.6 W h kg(−1) at a power density of 660.1 W kg(−1), and cycling performance of 84.3% after 2000 cycles. As a result, the resulting data demonstrate that the MMO/C electroactive material has promising abilities in capacitive energy storage systems. The Royal Society of Chemistry 2022-09-29 /pmc/articles/PMC9520677/ /pubmed/36320277 http://dx.doi.org/10.1039/d2ra04691a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Yousefipour, Kian
Sarraf-Mamoory, Rasoul
Mollayousefi, Shadi
Synthesis of manganese molybdate/MWCNT nanostructure composite with a simple approach for supercapacitor applications
title Synthesis of manganese molybdate/MWCNT nanostructure composite with a simple approach for supercapacitor applications
title_full Synthesis of manganese molybdate/MWCNT nanostructure composite with a simple approach for supercapacitor applications
title_fullStr Synthesis of manganese molybdate/MWCNT nanostructure composite with a simple approach for supercapacitor applications
title_full_unstemmed Synthesis of manganese molybdate/MWCNT nanostructure composite with a simple approach for supercapacitor applications
title_short Synthesis of manganese molybdate/MWCNT nanostructure composite with a simple approach for supercapacitor applications
title_sort synthesis of manganese molybdate/mwcnt nanostructure composite with a simple approach for supercapacitor applications
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9520677/
https://www.ncbi.nlm.nih.gov/pubmed/36320277
http://dx.doi.org/10.1039/d2ra04691a
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