锂离子

  • 网络ION;lithium ion;Lithium-ion;Li-ion;li ion
锂离子锂离子
  1. 动力锂离子电池稳态特性参数Map建模与仿真

    Map modeling and emulation of steady-state characteristic parameters of power Li-ion battery

  2. 锂离子电池PC基电解液的电化学行为研究

    Research on the electrochemical behavior of PC-based electrolyte for Li-ion battery

  3. 锂离子电池阴极材料LixNiO2合成

    Preparation of Li_xNiO_2 as Cathode in Secondary Lithium Ion Battery

  4. 中性载体PVC膜锂离子化学传感器的研究

    PVC Membrane Lithium Ion Chemical Sensors Based on Neutral Ionophore

  5. 掺杂P,Al和La元素的锂离子电池材料的微波合成研究

    The lithium ion battery cathode materials doped by P , Al and La synthesized by microwave method

  6. 利用XRD测定了其结构;采用库仑滴定方法对其锂离子的嵌入行为进行研究。

    The structure and the lithium intercalation properties were investigated by means of XRD and coulombic titration .

  7. 锂离子蓄电池Co3O4负极材料

    Study on the Co_3O_4 negative materials for lithium-ion batteries

  8. 锂离子电池纳米Co3O4-PTFE复合负极材料的循环性能

    Cycling Capacitance of Co_3O_4-PTFE Composite Negative-electrode for Lithium-ion Batteries

  9. 锂离子电池负极薄膜的静电喷雾沉积(ESD)制备与表征

    Electrostatic spray deposition ( ESD ) derived graphite films for lithium ion batteries

  10. 电沉积-烧结制备Co3O4锂离子电池负极及电性能

    Co_3O_4 Negative Electrode for Lithium-Ion Batteries Prepared by Electrochemical Deposition-Sintering Processes and Its Capacitance Performance

  11. 尖晶石LiMn2O4的低温合成及锂离子嵌脱动力学

    Low temperature preparation and kinetics of Li-ion insertion-extraction of spinel LiMn_2O_4

  12. 纳米SiO2改性聚合物锂离子电池的研究

    Study on Plastic Li-ion Battery Modified by Nano-SiO_2

  13. 微波-模板法合成锂离子电池正极材料LiMn2O4机理的光谱学研究

    Study on Microwave-Templated Synthesis Mechanism of LiMn_2O_4 by Infrared Spectroscopy

  14. 丁磺酸内酯(BS)作锂离子电池电解液添加剂

    On the use of butyl sultone ( BS ) as an additive for lithium ion battery

  15. 锂离子电池中固体电解质界面膜(SEI)研究进展

    Progress in Solid Electrolyte Interface in Lithium Ion Batteries

  16. 锂离子电池正极材料LiMn2O4软化学合成方法的新进展

    Recent development on the soft chemical method of synthesis anode material LiMn_2O_4 for Li-ion battery

  17. 实验观察到,这一晶体导电的载体主要是锂离子,并近似地具有在c向上一维电导性的特点。

    It was experimentally verified that the current carriers in this crystal are chiefly , if not entirely , lithium ions , and that the conductivity may be approximately described as one-dimensional along the c-axis .

  18. 锂离子蓄电池正极材料LiMn2O4高温容量衰减解析

    Analysis of the capacity fading of LiMn_2O_4 as cathode material for Li-ion batteries at high temperature

  19. 研究了H2Pz(dtn)(mt)6对正极材料MnO2在锂离子电池中的修饰作用。

    The modification on the cathode materials MnO 2 in lithium ion battery was studied .

  20. LiNbO3-Zn3Nb2O8赝二元系相图、单晶生长及锂离子电导性能的研究

    Investigations on phase diagram , crystal growth and lithium ion conduction of linbo_3 & zn_3nb_2o_ ? Pseudobinary system

  21. 包裹沉淀法合成锂离子二次电池正极材料LiMn2O4

    Coprecipitation coating synthesis and electrochemistry of spinel limn_2o_4 as cathode materials for lithium ion batteries on mediation method

  22. 层状Li(1+x)V(3)O(8)价格低、理论比容量高,是一种有发展前途的锂离子电池的正极材料。

    Layered Li ( 1 + x ) V_3O_8 is regarded as a promising cathode material in Li ions battery for its low price , high capacity and other special electrochemical performance .

  23. 高电压锂离子电池LiNi(0.5)Mn(1.5)O4的合成及性能

    Synthesis and property of LiNi_ ( 0.5 ) Mn_ ( 1.5 ) O_4 for high-voltage lithium ion batteries

  24. 锂离子电池正极材料LiNi(0.5)Mn(0.5)O2的循环性能

    Cycle performance of LiNi_ ( 0.5 ) Mn_ ( 0.5 ) O_2 as cathode material for lithium secondary batteries

  25. 增塑剂DBP对锂离子电池用聚合物PVDF-HFP离子电导率的影响

    Influence of Plasticizer DBP on the Ion Conductivity of the Polymer Electrolyte PVDF-HFP for Lithium Batteries

  26. 锂离子电池用Sn-Ni合金负极的研究

    Study of Sn-Ni alloy as negative electrode for lithium-ion batteries

  27. 本文研究了PVDF-HFP基锂离子电池聚合物凝胶电解质的性质。

    A gel-typed polymer electrolyte based on PVDF-HFP was studied .

  28. 电沉积制备择优取向Sn-Co合金锂离子电池负极材料

    Electrodeposition of Preferred Orientation Sn-Co Alloy Anodes for Lithium-ion Batteries

  29. 层状Ni-Mn基锂离子电池正极材料进展

    A Review on Novel Lithium-Ion Cathode Materials Based on Layered Nickel Manganese Oxides

  30. 碳阳极表面形成的SEI钝化层会导致锂离子蓄电池体系中锂的损失。

    Lithium in Li ion battery system is lost because the SEI passive layer is formed onto the surface of carbon anode .