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Three-Dimensional Porous Iron Vanadate Nanowire Arrays as a High-Performance Lithium-Ion Battery

机译:三维多孔钒酸铁纳米线阵列作为高性能锂离子电池

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摘要

Development of three-dimensional nanoarchitectures on current collectors has emerged as an effective strategy for enhancing rate capability and cycling stability of the electrodes. Herein, a new type of three-dimensional porous iron vanadate (Fe0.12V2O5) nanowire arrays on a Ti foil has been synthesized by a hydrothermal method. The as-prepared Fe0.12V2O5 nanowires are about 30 nm in diameter and several micrometers in length. The effect of reaction time on the resulting morphology is investigated and the mechanism for the nanowire formation is proposed. As an electrode material used in lithium-ion batteries, the unique configuration of the Fe0.12V2O5 nanowire arrays presents enhanced capacitance, satisfying rate capability and good cycling stability, as evaluated by cyclic voltammetry and galvanostatic discharge-charge cycling. It delivers a high discharge capacity of 293 mAh.g(-1) at 2.0-3.6 V or 382.2 mAh.g(-1) at 1.0-4.0 V after 50 cycles at 30 mA.g(-1)
机译:集电器上三维纳米结构的发展已成为提高电极的倍率能力和循环稳定性的有效策略。在此,已经通过水热法合成了一种新型的钛箔上的三维多孔钒酸铁(Fe0.12V2O5)纳米线阵列。所制备的Fe0.12V2O5纳米线的直径约为30 nm,长度约为几微米。研究了反应时间对所得形态的影响,并提出了形成纳米线的机理。作为锂离子电池中使用的电极材料,Fe0.12V2O5纳米线阵列的独特配置具有增强的电容,令人满意的倍率能力和良好的循环稳定性(通过循环伏安法和恒电流放电-充电循环法评估)。在30 mA.g(-1)循环50次后,它在2.0-3.6 V时可提供293 mAh.g(-1)的高放电容量,在1.0-4.0 V时可提供382.2 mAh.g(-1)的高放电容量。

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