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Porous V(2)O(5)/RGO/CNT hierarchical architecture as a cathode material: Emphasis on the contribution of surface lithium storage

A three dimensional vanadium pentoxide/reduced graphene oxide/carbon nanotube (3D V(2)O(5)/RGO/CNT) composite is synthesized by microwave-assisted hydrothermal method. The combination of 2D RGO and 1D CNT establishes continuous 3D conductive network, and most notably, the 1D CNT is designed to form...

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Autores principales: Palanisamy, Kowsalya, Um, Ji Hyun, Jeong, Mihee, Yoon, Won-Sub
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4980635/
https://www.ncbi.nlm.nih.gov/pubmed/27511434
http://dx.doi.org/10.1038/srep31275
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author Palanisamy, Kowsalya
Um, Ji Hyun
Jeong, Mihee
Yoon, Won-Sub
author_facet Palanisamy, Kowsalya
Um, Ji Hyun
Jeong, Mihee
Yoon, Won-Sub
author_sort Palanisamy, Kowsalya
collection PubMed
description A three dimensional vanadium pentoxide/reduced graphene oxide/carbon nanotube (3D V(2)O(5)/RGO/CNT) composite is synthesized by microwave-assisted hydrothermal method. The combination of 2D RGO and 1D CNT establishes continuous 3D conductive network, and most notably, the 1D CNT is designed to form hierarchically porous structure by penetrating into V(2)O(5) microsphere assembly constituted of numerous V(2)O(5) nanoparticles. The highly porous V(2)O(5) microsphere enhances electrolyte contact and shortens Li(+) diffusion path as a consequence of its developed surface area and mesoporosity. The successive phase transformations of 3D V(2)O(5)/RGO/CNT from α-phase to ε-, δ-, γ-, and ω-phase and its structural reversibility upon Li(+) intercalation/de-intercalation are investigated by in situ XRD analysis, and the electronic and local structure reversibility around vanadium atom in 3D V(2)O(5)/RGO/CNT is observed by in situ XANES analysis. The 3D V(2)O(5)/RGO/CNT achieves a high capacity of 220 mAh g(−1) at 1 C after 80 cycles and an excellent rate capability of 100 mAh g(−1) even at a considerably high rate of 20 C. The porous 3D V(2)O(5)/RGO/CNT structure not only provides facile Li(+) diffusion into bulk but contributes to surface Li(+) storage as well, which enables the design of 3D V(2)O(5)/RGO/CNT composite to become a promising cathode architecture for high performance LIBs.
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spelling pubmed-49806352016-08-19 Porous V(2)O(5)/RGO/CNT hierarchical architecture as a cathode material: Emphasis on the contribution of surface lithium storage Palanisamy, Kowsalya Um, Ji Hyun Jeong, Mihee Yoon, Won-Sub Sci Rep Article A three dimensional vanadium pentoxide/reduced graphene oxide/carbon nanotube (3D V(2)O(5)/RGO/CNT) composite is synthesized by microwave-assisted hydrothermal method. The combination of 2D RGO and 1D CNT establishes continuous 3D conductive network, and most notably, the 1D CNT is designed to form hierarchically porous structure by penetrating into V(2)O(5) microsphere assembly constituted of numerous V(2)O(5) nanoparticles. The highly porous V(2)O(5) microsphere enhances electrolyte contact and shortens Li(+) diffusion path as a consequence of its developed surface area and mesoporosity. The successive phase transformations of 3D V(2)O(5)/RGO/CNT from α-phase to ε-, δ-, γ-, and ω-phase and its structural reversibility upon Li(+) intercalation/de-intercalation are investigated by in situ XRD analysis, and the electronic and local structure reversibility around vanadium atom in 3D V(2)O(5)/RGO/CNT is observed by in situ XANES analysis. The 3D V(2)O(5)/RGO/CNT achieves a high capacity of 220 mAh g(−1) at 1 C after 80 cycles and an excellent rate capability of 100 mAh g(−1) even at a considerably high rate of 20 C. The porous 3D V(2)O(5)/RGO/CNT structure not only provides facile Li(+) diffusion into bulk but contributes to surface Li(+) storage as well, which enables the design of 3D V(2)O(5)/RGO/CNT composite to become a promising cathode architecture for high performance LIBs. Nature Publishing Group 2016-08-11 /pmc/articles/PMC4980635/ /pubmed/27511434 http://dx.doi.org/10.1038/srep31275 Text en Copyright © 2016, The Author(s) http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Palanisamy, Kowsalya
Um, Ji Hyun
Jeong, Mihee
Yoon, Won-Sub
Porous V(2)O(5)/RGO/CNT hierarchical architecture as a cathode material: Emphasis on the contribution of surface lithium storage
title Porous V(2)O(5)/RGO/CNT hierarchical architecture as a cathode material: Emphasis on the contribution of surface lithium storage
title_full Porous V(2)O(5)/RGO/CNT hierarchical architecture as a cathode material: Emphasis on the contribution of surface lithium storage
title_fullStr Porous V(2)O(5)/RGO/CNT hierarchical architecture as a cathode material: Emphasis on the contribution of surface lithium storage
title_full_unstemmed Porous V(2)O(5)/RGO/CNT hierarchical architecture as a cathode material: Emphasis on the contribution of surface lithium storage
title_short Porous V(2)O(5)/RGO/CNT hierarchical architecture as a cathode material: Emphasis on the contribution of surface lithium storage
title_sort porous v(2)o(5)/rgo/cnt hierarchical architecture as a cathode material: emphasis on the contribution of surface lithium storage
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4980635/
https://www.ncbi.nlm.nih.gov/pubmed/27511434
http://dx.doi.org/10.1038/srep31275
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