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Experimental and Computational Analysis of MnO(2)@V(2)C-MXene for Enhanced Energy Storage

Herein, we studied the novel and emerging group of 2D materials namely MXene along with its nanocomposites. This work entails detailed experimental as well as computational study of the electrochemical behavior of vanadium carbide (V(2)CT(x)) MXene and MnO(2)-V(2)C nanocomposite with varying percent...

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Autores principales: Fatima, Mahjabeen, Zahra, Syedah Afsheen, Khan, Saleem Ayaz, Akinwande, Deji, Minár, Jan, Rizwan, Syed
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8308169/
https://www.ncbi.nlm.nih.gov/pubmed/34209519
http://dx.doi.org/10.3390/nano11071707
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author Fatima, Mahjabeen
Zahra, Syedah Afsheen
Khan, Saleem Ayaz
Akinwande, Deji
Minár, Jan
Rizwan, Syed
author_facet Fatima, Mahjabeen
Zahra, Syedah Afsheen
Khan, Saleem Ayaz
Akinwande, Deji
Minár, Jan
Rizwan, Syed
author_sort Fatima, Mahjabeen
collection PubMed
description Herein, we studied the novel and emerging group of 2D materials namely MXene along with its nanocomposites. This work entails detailed experimental as well as computational study of the electrochemical behavior of vanadium carbide (V(2)CT(x)) MXene and MnO(2)-V(2)C nanocomposite with varying percentages of MnO(2). A specific capacitance of 551.8 F/g was achieved for MnO(2)-V(2)C nanocomposite in 1 M KOH electrolyte solution, which is more than two times higher than the gravimetric capacitance of 196.5 F/g obtained for V(2)C. The cyclic stability achieved for the MnO(2)-V(2)C nanocomposite resulted in a retentivity of 96.5% until 5000 cycles. The c-lattice parameter achieved for MXene is 22.6 Å, which was 13.01 Å for MAX phase. The nanocomposite resulted in a c-lattice parameter of 27.2 Å, which showed that the spatial distance between the MXene layers was efficiently obtained. The method of wet etching was used for the preparation of pristine MXene and the liquid phase precipitation method was opted for the synthesis of the MnO(2)-V(2)C nanocomposite. Density functional theory calculation was exercised so as to complement the experimental results and to understand the microscopic details, such as structure stability and electronic structure. The current report presents a comprehensive experimental and computational study on 2D MXenes for future energy storage applications.
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spelling pubmed-83081692021-07-25 Experimental and Computational Analysis of MnO(2)@V(2)C-MXene for Enhanced Energy Storage Fatima, Mahjabeen Zahra, Syedah Afsheen Khan, Saleem Ayaz Akinwande, Deji Minár, Jan Rizwan, Syed Nanomaterials (Basel) Article Herein, we studied the novel and emerging group of 2D materials namely MXene along with its nanocomposites. This work entails detailed experimental as well as computational study of the electrochemical behavior of vanadium carbide (V(2)CT(x)) MXene and MnO(2)-V(2)C nanocomposite with varying percentages of MnO(2). A specific capacitance of 551.8 F/g was achieved for MnO(2)-V(2)C nanocomposite in 1 M KOH electrolyte solution, which is more than two times higher than the gravimetric capacitance of 196.5 F/g obtained for V(2)C. The cyclic stability achieved for the MnO(2)-V(2)C nanocomposite resulted in a retentivity of 96.5% until 5000 cycles. The c-lattice parameter achieved for MXene is 22.6 Å, which was 13.01 Å for MAX phase. The nanocomposite resulted in a c-lattice parameter of 27.2 Å, which showed that the spatial distance between the MXene layers was efficiently obtained. The method of wet etching was used for the preparation of pristine MXene and the liquid phase precipitation method was opted for the synthesis of the MnO(2)-V(2)C nanocomposite. Density functional theory calculation was exercised so as to complement the experimental results and to understand the microscopic details, such as structure stability and electronic structure. The current report presents a comprehensive experimental and computational study on 2D MXenes for future energy storage applications. MDPI 2021-06-29 /pmc/articles/PMC8308169/ /pubmed/34209519 http://dx.doi.org/10.3390/nano11071707 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Fatima, Mahjabeen
Zahra, Syedah Afsheen
Khan, Saleem Ayaz
Akinwande, Deji
Minár, Jan
Rizwan, Syed
Experimental and Computational Analysis of MnO(2)@V(2)C-MXene for Enhanced Energy Storage
title Experimental and Computational Analysis of MnO(2)@V(2)C-MXene for Enhanced Energy Storage
title_full Experimental and Computational Analysis of MnO(2)@V(2)C-MXene for Enhanced Energy Storage
title_fullStr Experimental and Computational Analysis of MnO(2)@V(2)C-MXene for Enhanced Energy Storage
title_full_unstemmed Experimental and Computational Analysis of MnO(2)@V(2)C-MXene for Enhanced Energy Storage
title_short Experimental and Computational Analysis of MnO(2)@V(2)C-MXene for Enhanced Energy Storage
title_sort experimental and computational analysis of mno(2)@v(2)c-mxene for enhanced energy storage
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8308169/
https://www.ncbi.nlm.nih.gov/pubmed/34209519
http://dx.doi.org/10.3390/nano11071707
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