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Preparation and electrochemical performance of MWCNTs@MnO_2 nanocomposite for lithium ion batteries 被引量:2

Preparation and electrochemical performance of MWCNTs@MnO_2 nanocomposite for lithium ion batteries
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摘要 Tubular nanocomposite with interconnected MnO2 nanoflakes coated on MWCNTs(MWCNTs@MnO2)was fabricated by an aqueous solution method at 80°C.Scanning electron microscopy,X-ray diffraction and galvanostatic charge-discharge tests were used to characterize the structures and electrochemical performances of the as-prepared nanocomposite.The capacity reaches 1233.6 mA h g-1 at a current density of 100 mA g-1 for the first discharge,and it can still maintain a capacity of 633.1mA h g-1 after 100 charge-discharge cycles.The results show that MWCNTs with good electrical conductivity as anchors of MnO2 can provide fast electron transport channels for MnO2 in the electrochemical reactions,and the as-prepared MWCNTs@MnO2 nanocomposite is a potential anode material for lithium ion batteries.
出处 《Science China(Technological Sciences)》 SCIE EI CAS 2014年第6期1077-1080,共4页 中国科学(技术科学英文版)
基金 supported by the National Natural Science Foundation of China(Grant Nos.11179038 and 10974073) the Specialized Re-search Fund for the Doctoral Program of Higher Education(Grant No.20120211130005)
关键词 manganese dioxide multi-walled carbon nanotubes NANOCOMPOSITE aqueous solution preparation electrochemical performances lithium ion battery 纳米复合材料 多壁碳纳米管 二氧化锰 电化学性能 锂离子电池 扫描电子显微镜 充放电试验 X射线衍射
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  • 1Tian W, Yang H S, Fan X Y, et al. Catalytic reduction of NO, with NH, over different-shaped MnO, at low temperature. J Hazard Mater, 2011,188: 105-109.
  • 2Zhou M, Zhang X, Wei J M, et al. Morphology-controlled synthesis and novel microwave absorption properties of hollow urchinlike a-MnO2 nanostructures. J Phys Chern, 2011,115: 1398-1402.
  • 3Li Y, Xie H Q, Wang J F, et al. Preparation and electrochemical performances of n-MrrO, nanorod for supercapacitor. Mater Lett, 2011, 65:403-405.
  • 4Liu H W, Tan L. A novel method for preparing lithium manganese oxide nanorods from nanorod precursor. J Nanopart Res, 2010, 12: 301-305.
  • 5Jiang H, Zhao T, Ma J, et al. Ultrafine manganese dioxide nanowire network for high-performance supercapacitors. Chem Commun, 20 11, 47: 1264-1266.
  • 6Wang X H, Ni S B, Zhou G, et al. Facile synthesis of ultra-long a-MnO, nanowires and their microwave absorption properties. Mater Lett, 2010, 64: 1496-1498.
  • 7Zhang H, Cao G P, Wang Z Y, et al. Growth of manganese oxide nanoflowers on vertically-aligned carbon nanotube arrays for high-rate electrochemical capacitive energy storage. Nano Lett, 2008, 8:2664-2668.
  • 8Yan Y J, Huang C D. Effect of synthetical conditions, morphology, and crystallographic structure of Mn02 on its electrochemical behavior. J Solid State Electrochem, 2010,14: 1293-1301.
  • 9He P, Luo J Y, Yang X H, et al. Preparation and electrochemical profile of Lio."MnO, nanorods as cathode material for secondary lithium batteries. Electrochim Acta, 2009, 54: 7345-7349.
  • 10Lee H W, Muralidharan P, Ruffo R, et al. Ultrathin spinel LiMn,04 nanowires as high power cathode materials for Li-ion batteries. Nano Lett, 2010, 10: 3852-3856.

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