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Enhanced reversibility and electrochemical performances of mechanically alloyed Cu3P achieved by Fe addition

机译:通过Fe加入实现机械合金化Cu3p的可逆性和电化学性能提高

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摘要

Cu3P is a potential anode material for lithium-ion batteries with its comparable gravimetric capacity, but several times higher volumetric capacity (4732 mA h cm(-3)) than graphite. However, the cycling stability of Cu3P is poor at low discharge potentials and high current densities. In this work, Fe addition is employed as a simple strategy to modulate the composition and phase constitution of Cu3P nanopowders synthesized by wet mechanical alloying, and thereby to tune the electrochemical performance of the anode. The addition of Fe results in a composite constitute containing Cu3P as the major phase and some other minor phases including Cu, a-Fe and FeP, which are combinationally determined by X-ray diffraction, energy dispersive X-ray spectroscopy and Mossbauer spectroscopy. Electrochemical tests reveal that both the cycling stability and the rate capability of the electrodes are improved by Fe addition. The Cu3P electrode with 10% Fe addition shows the best cell performance, with the capacity being remarkably improved by over 100%, from 82 mA h g(-1) to 178 mA h g(-1) after 50 cycles at 0.75C between 2.0 V and 0.5 V vs. Li/Li+. The improvement of the electrochemical performance is engendered by a synergetic effect of the microstructure change of the powders and the presence of Fe-related minor phases, leading to increased electronic conductivity as well as enhanced electrochemical reversibility of the electrode.
机译:Cu3P是锂离子电池的潜在阳极材料,其重量容量具有相当的重量容量,但体积容量越高(4732mA Hcm(-3))比石墨更高。然而,Cu3P的循环稳定性在低放电电位和高电流密度下差。在这项工作中,使用Fe添加是一种简单的策略来调节通过湿机械合金化合成的Cu3P纳米粉末的组合物和相结构,从而调整阳极的电化学性能。的Fe的结果在复合添加构成含有Cu3P作为主相和一些其它少量相包含Cu,A-Fe和FEP,其combinationally通过X射线衍射,能量色散X射线光谱仪和穆斯堡尔谱测定。电化学测试表明,通过加法提高了电极的循环稳定性和速率能力。具有10%Fe的Cu3P电极显示出最佳的细胞性能,该容量在50次循环在2.0 V之间的50次循环后,从82 mA Hg(-1)至178mA hg(-1)显着提高到100%以上。和0.5 V与Li / Li +。电化学性能的改善是通过粉末微观结构变化的协同效应和Fe相关次次相的存在的协同作用,导致电子导电性增加以及电极的增强电化学可逆性。

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  • 来源
    《RSC Advances 》 |2016年第32期| 共9页
  • 作者单位

    Univ Elect Sci &

    Technol China Sch Microelect &

    Solid State Elect State Key Lab Elect Thin Films &

    Integrated Devic Chengdu 610054 Peoples R China;

    Univ Elect Sci &

    Technol China Sch Microelect &

    Solid State Elect State Key Lab Elect Thin Films &

    Integrated Devic Chengdu 610054 Peoples R China;

    Univ Elect Sci &

    Technol China Sch Microelect &

    Solid State Elect State Key Lab Elect Thin Films &

    Integrated Devic Chengdu 610054 Peoples R China;

    Univ Elect Sci &

    Technol China Sch Microelect &

    Solid State Elect State Key Lab Elect Thin Films &

    Integrated Devic Chengdu 610054 Peoples R China;

    Univ Elect Sci &

    Technol China Sch Microelect &

    Solid State Elect State Key Lab Elect Thin Films &

    Integrated Devic Chengdu 610054 Peoples R China;

    Univ Elect Sci &

    Technol China Sch Microelect &

    Solid State Elect State Key Lab Elect Thin Films &

    Integrated Devic Chengdu 610054 Peoples R China;

    Univ Elect Sci &

    Technol China Sch Microelect &

    Solid State Elect State Key Lab Elect Thin Films &

    Integrated Devic Chengdu 610054 Peoples R China;

    Univ Elect Sci &

    Technol China Sch Microelect &

    Solid State Elect State Key Lab Elect Thin Films &

    Integrated Devic Chengdu 610054 Peoples R China;

    Univ Elect Sci &

    Technol China Sch Microelect &

    Solid State Elect State Key Lab Elect Thin Films &

    Integrated Devic Chengdu 610054 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学 ;
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