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Fabrication and Characterization of SnO2/Graphene Composites as High Capacity Anodes for Li-Ion Batteries

机译:SnO 2 /石墨烯复合材料作为锂离子电池高容量阳极的制备与表征

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Tin-oxide and graphene (TG) composites were fabricated using the Electrostatic Spray Deposition (ESD) technique, and tested as anode materials for Li-ion batteries. The electrochemical performance of the as-deposited TG composites were compared to heat-treated TG composites along with pure tin-oxide films. The heat-treated composites exhibited superior specific capacity and energy density than both the as-deposited TG composites and tin oxide samples. At the 70th cycle, the specific capacities of the as-deposited and post heat-treated samples were 534 and 737 mA·h/g, respectively, and the corresponding energy densities of the as-deposited and heat-treated composites were 1240 and 1760 W·h/kg, respectively. This improvement in the electrochemical performance of the TG composite anodes as compared to the pure tin oxide samples is attributed to the synergy between tin oxide and graphene, which increases the electrical conductivity of tin oxide and helps alleviate volumetric changes in tin-oxide during cycling.
机译:使用静电喷涂(ESD)技术制造了氧化锡和石墨烯(TG)复合材料,并作为锂离子电池的负极材料进行了测试。将沉积后的TG复合材料与热处理的TG复合材料以及纯氧化锡薄膜的电化学性能进行了比较。热处理后的复合材料比沉积的TG复合材料和氧化锡样品均显示出更高的比容量和能量密度。在第70个循环中,沉积后和热处理后样品的比容量分别为534和737 mA·h / g,沉积后和热处理后的复合材料的相应能量密度为1240和1760。 W·h / kg。与纯氧化锡样品相比,TG复合阳极电化学性能的改善归因于氧化锡和石墨烯之间的协同作用,这增加了氧化锡的电导率并有助于缓解循环过程中氧化锡的体积变化。

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