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载碳黑的氧化钒纳米带及其烧结后的产物(五氧化二钒纳米带)作为锂离子电池的高性能正极材料。

Carbon black anchored vanadium oxide nanobelts and their post-sintering counterpart (V2O5 nanobelts) as high performance cathode materials for lithium ion batteries.

机构信息

Shanghai Key Laboratory of Special Artificial Microstructure Materials and Technology, Department of Physical Science and Engineering, Tongji University, Siping Road 1239, Shanghai 200092, P.R. China.

出版信息

Phys Chem Chem Phys. 2014 Mar 7;16(9):3973-82. doi: 10.1039/c3cp54428a.

Abstract

Carbon black (CB) anchored vanadium oxide (C-VOx) nanobelts are successfully prepared by a simple sol-gel route and subsequent hydrothermal treatment. The synthesized C-VOx nanobelts display high specific capacity and good cycling stability as a cathode material for lithium ion batteries (LIBs) (232 mA h g(-1) at initial discharge and 195 mA h g(-1) during 50th discharge at a current density of 100 mA g(-1) between 1.5-4 V versus Li) due to the nano-belted morphology and closely attached CB. The orthorhombic V2O5 nanobelts can be obtained by post-sintering of C-VOx nanobelts in air. These V2O5 nanobelts, which maintain their previous belted morphology and possess higher vanadium valence, exhibit superior electrochemical properties, especially the higher specific capacity (406 mA h g(-1) and 220 mA h g(-1) during the 1st and 50th discharge at a current density of 100 mA g(-1), and 146 mA h g(-1) at a current density of 1000 mA g(-1) between 1.5-4 V versus Li). Both of them can be used as high performance cathode materials for LIB application. Furthermore, a full-cell using V2O5 nanobelts as the cathode and lithiated graphite as the anode is assembled and its electrochemical performance is measured in the voltage range of 1.5-3.8 V.

摘要

碳黑锚定的氧化钒(C-VOx)纳米带通过简单的溶胶-凝胶法和随后的水热处理成功制备。合成的 C-VOx 纳米带作为锂离子电池(LIBs)的阴极材料具有高比容量和良好的循环稳定性(在初始放电时为 232 mA h g(-1),在 100 mA g(-1)电流密度下 50 次放电时为 195 mA h g(-1),电压范围为 1.5-4 V 相对于 Li),这归因于纳米带形貌和紧密附着的 CB。C-VOx 纳米带在空气中后烧结可以得到正交相的 V2O5 纳米带。这些 V2O5 纳米带保持了以前的带状形态,具有更高的钒价态,表现出优异的电化学性能,特别是更高的比容量(在 100 mA g(-1)电流密度下第 1 次和第 50 次放电时分别为 406 mA h g(-1)和 220 mA h g(-1),在 1.5-4 V 相对于 Li 的 1000 mA g(-1)电流密度下为 146 mA h g(-1))。它们都可以用作高性能的 LIB 应用阴极材料。此外,还组装了一个使用 V2O5 纳米带作为阴极和锂化石墨作为阳极的全电池,并在 1.5-3.8 V 的电压范围内测量了其电化学性能。

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