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动力锂离子电池负极材料的纳米化研究 被引量:1

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摘要 动力锂离子电池与传统的锂离子电池在结构、组成方面基本相同,最大的不同是安全可靠性和功率密度。动力锂离子电池不仅具有通常锂离子电池所具有的优点,同时功率密度也比较高,这些性能与目前已有的电池体系相比,具有一些明显的优越性。动力锂离子电池已成为当今混合动力车、插电式混合动力车和纯电动车的理想动力之一。但是,目前锂离子电池的化学组成比较多,在不同场合可采用不同的化学组成,本文将对动力锂离子电池的常见的一些负极材料及其研发近况做一个概述。
出处 《新材料产业》 2010年第10期32-37,共6页 Advanced Materials Industry
基金 国家科技部"973"项目(编号:2007CB209702) 上海市科委(编号:09QH1400400)的资助
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参考文献25

  • 1Takamura T,Endo K,Fu L J,et al.Identification of nano--sized holes by TEM in the graphene layer of graphite and the high rate discharge capability of Li--ion battery anodes Electrochim[J].Acta,2007,53: 1055.
  • 2Wang Q,Li H,Chen L Q, et al.Novel spherical microporous carbon as anode material for Li--ion batteries[J].Solid State Ionics, 2002, 152-153:43.
  • 3Yang L C, Shi Y, Gao C S, et al. Carbon nanospheres from pyrolysis of polyacrylonitrile[J]. Carbon, 2008,46 : 1816.
  • 4Fu L J,Liu H,Zhang H P,et al. Synthesis and electrochemical performance of novel core/shell structured nanocomposites[J]. Electrochem. Commun., 2006,8 : 1.
  • 5Fu L J,Yang L C,Shi Y,et al.Synthesis of carbon coated nanoporous microcomposite and its rate capability for lithium ion battery[J].Micro. Meso. Mater.,2009, 117: 515.
  • 6Hu Y S,Kienle L,Guo Y G,et al. High lithium electroactivity of nanometer-sized rutile TiO2[J].Adv. Mater.2006, 18:1421.
  • 7Guo Y G,Hu Y S,Sigle W,et al.Superior electrode performance of nanostructured mesoporous TiO2(anatase) through efficient hierarchical mixed conducting networks[J].Adv. Mater,2007, 19: 2087.
  • 8Wang G J,Gao J,Fu L J,et aI.Preparation and characteristic of carbon--coated Li4TisO~e anode material[J].J. Power Sources, 2007,174: 1109.
  • 9梁奇.纳米钛酸锂的性能突破与展望[R].2010锂离子电池新材料国际论坛.深圳,2010-07-29.
  • 10Lee K. ,Jung Y,Oh S.Synthesis of tin-encapsulated spherical hollow carbon for anode material in lithium secondary baiteries[J].J.Ame. Chem. Soc.,2003, 125: 5650.

二级参考文献24

  • 1Whitehead A, Ellioft J, Owen J. Nanostructured tin for use as a negative electrode material in Li-ion batteries [J]. J Power Sources, 1999, 81-82: 33-38.
  • 2Yang J, Takeda Y, Imanishi N, et al. Ultrafine Sn and SnSb0.14 powders for lithium storage matrices in lithium-ion batteries [J]. J Electrochem Soc, 1999, 146: 4009-4013.
  • 3Yang J, Takeda Y, Imanishi N, et al. Study of the cycling performance of finely dispersed lithium alloy composite electrodes under high Li-utilization [J]. J Power Sources, 1999, 79: 220-224.
  • 4Li H, Huang X, Chen L, et al. A high capacity nano-Si composite anode material for lithium rechargeable batteries [J]. Electrochem Solid-State Lett, 1999, 2: 547-549.
  • 5Li H, Huang X, Chen L, et al. The crystal structural evolution of nano-Si anode caused by lithium insertion and extraction at room temperature [J]. Solid State Ionics, 2000, 135: 181-191.
  • 6Bourderau S, Brousse T, Schleich D M. Amorphous silicon as a possible anode material for Li-ion batteries [J]. J Power Sources, 1999, 81/82: 233-236.
  • 7Jun H, Park M, Yoon Y, et al. Amorphous silicon anode for lithium-ion rechargeable batteries [J]. J Power Sources, 2003, 115: 346-351.
  • 8Kim I, Kumta P N, Blomgren G E. Si/TiN nanocomposites novel anode materials for Li-ion batteries [J]. Electrochem Solid-State Lett, 2000, 3: 493-496.
  • 9Hwang S, Lee H, Jang S, et al. Lithium insertion in SiAg powders produced by mechanical alloying [J]. Electrochem Solid-State Lett, 2001, 4: A97-A100.
  • 10Wang C S, Wu G T, Zhang X B, et al. Lithium insertion in carbon-silicon composite materials produced by mechanical milling [J]. J Electrochem Soc, 1998, 145: 2751-2758.

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