Synthesis of hierarchical three-dimensional vanadium oxide microstructures as high-Capacity cathode materials for lithium-ion batteries

Hierarchical three-dimensional (3D) vanadium oxide microstructures, including urchin-like microflowers, nanohorn-structured microspheres, nanosheet-assembled microflowers, and nanosheets bundles, are successfully synthesized by a versatile template-free solvothermal method. It is found that the conc...

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Main Authors: Pan, Anqiang, Wu, Hao Bin, Yu, Le, Zhu, Ting, Lou, David Xiong Wen
Other Authors: School of Chemical and Biomedical Engineering
Format: Article
Language:English
Published: 2013
Online Access:https://hdl.handle.net/10356/96446
http://hdl.handle.net/10220/10277
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-964462020-03-07T11:35:37Z Synthesis of hierarchical three-dimensional vanadium oxide microstructures as high-Capacity cathode materials for lithium-ion batteries Pan, Anqiang Wu, Hao Bin Yu, Le Zhu, Ting Lou, David Xiong Wen School of Chemical and Biomedical Engineering Hierarchical three-dimensional (3D) vanadium oxide microstructures, including urchin-like microflowers, nanohorn-structured microspheres, nanosheet-assembled microflowers, and nanosheets bundles, are successfully synthesized by a versatile template-free solvothermal method. It is found that the concentration of the precursor (VOC2O4) solution has a significant effect on the morphologies of the products. As an example, the time-dependent phase and morphology evolution for the urchin-like vanadium oxide microflowers has been investigated in detail. Urchin-like VO2 microflowers can be self-assembled within 2 h without using any surfactants. After calcination, the VO2 microflowers can be easily transformed to urchin-like V2O5 microstructures. The as-obtained V2O5 microflowers are highly porous with a specific surface area of 33.64 m2 g–1. When evaluated as a cathode material for lithium-ion batteries, the V2O5 sample delivers very high specific discharge capacity of 267 mA h g–1 at a current density of 300 mA g–1. Further, it also exhibits improved cycling stability. The excellent electrochemical performance is attributed to multiple advantageous structural features, including the nanosized building blocks, high porosity, and the 3D hierarchical microstructures. 2013-06-12T07:36:20Z 2019-12-06T19:30:56Z 2013-06-12T07:36:20Z 2019-12-06T19:30:56Z 2012 2012 Journal Article Pan, A., Wu, H. B., Yu, L., Zhu, T., & Lou, D. X. W. (2012). Synthesis of Hierarchical Three-Dimensional Vanadium Oxide Microstructures as High-Capacity Cathode Materials for Lithium-Ion Batteries. ACS Applied Materials & Interfaces, 4(8), 3874-3879. 1944-8244 https://hdl.handle.net/10356/96446 http://hdl.handle.net/10220/10277 10.1021/am3012593 en ACS applied materials & interfaces © 2012 American Chemical Society.
institution Nanyang Technological University
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description Hierarchical three-dimensional (3D) vanadium oxide microstructures, including urchin-like microflowers, nanohorn-structured microspheres, nanosheet-assembled microflowers, and nanosheets bundles, are successfully synthesized by a versatile template-free solvothermal method. It is found that the concentration of the precursor (VOC2O4) solution has a significant effect on the morphologies of the products. As an example, the time-dependent phase and morphology evolution for the urchin-like vanadium oxide microflowers has been investigated in detail. Urchin-like VO2 microflowers can be self-assembled within 2 h without using any surfactants. After calcination, the VO2 microflowers can be easily transformed to urchin-like V2O5 microstructures. The as-obtained V2O5 microflowers are highly porous with a specific surface area of 33.64 m2 g–1. When evaluated as a cathode material for lithium-ion batteries, the V2O5 sample delivers very high specific discharge capacity of 267 mA h g–1 at a current density of 300 mA g–1. Further, it also exhibits improved cycling stability. The excellent electrochemical performance is attributed to multiple advantageous structural features, including the nanosized building blocks, high porosity, and the 3D hierarchical microstructures.
author2 School of Chemical and Biomedical Engineering
author_facet School of Chemical and Biomedical Engineering
Pan, Anqiang
Wu, Hao Bin
Yu, Le
Zhu, Ting
Lou, David Xiong Wen
format Article
author Pan, Anqiang
Wu, Hao Bin
Yu, Le
Zhu, Ting
Lou, David Xiong Wen
spellingShingle Pan, Anqiang
Wu, Hao Bin
Yu, Le
Zhu, Ting
Lou, David Xiong Wen
Synthesis of hierarchical three-dimensional vanadium oxide microstructures as high-Capacity cathode materials for lithium-ion batteries
author_sort Pan, Anqiang
title Synthesis of hierarchical three-dimensional vanadium oxide microstructures as high-Capacity cathode materials for lithium-ion batteries
title_short Synthesis of hierarchical three-dimensional vanadium oxide microstructures as high-Capacity cathode materials for lithium-ion batteries
title_full Synthesis of hierarchical three-dimensional vanadium oxide microstructures as high-Capacity cathode materials for lithium-ion batteries
title_fullStr Synthesis of hierarchical three-dimensional vanadium oxide microstructures as high-Capacity cathode materials for lithium-ion batteries
title_full_unstemmed Synthesis of hierarchical three-dimensional vanadium oxide microstructures as high-Capacity cathode materials for lithium-ion batteries
title_sort synthesis of hierarchical three-dimensional vanadium oxide microstructures as high-capacity cathode materials for lithium-ion batteries
publishDate 2013
url https://hdl.handle.net/10356/96446
http://hdl.handle.net/10220/10277
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