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首页> 外文期刊>Electrochimica Acta >Fast facile synthesis of SnO2/Graphene composite assisted by microwave as anode material for lithium-ion batteries
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Fast facile synthesis of SnO2/Graphene composite assisted by microwave as anode material for lithium-ion batteries

机译:微波辅助SnO2 /石墨烯复合材料的快速合成作为锂离子电池的阳极材料

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摘要

SnO2 is promising as anode material for Lithium ion batteries(LIBs) due to its high specific capacity and low opening potential. However, its poor electronic conductivity as well as serious volume effect significantly restrict its application in LIBs. In this work, a facile hydrothermal method assisted with microwave is performed to realize the composite of SnO2 and graphene within only 30 minutes without any chelating agents. It is highly time-efficient with relatively high SnO2 loading of 89.97 wt.%. Ultrasmall nano-particles of SnO2 well disperse on the surface of the graphene with average particle size of 3-8 nm and larger surface area of 417.45 m(2) g(-1). Simultaneously, high charge/discharge capacity of 969.4/978.6 mAh g(-1) is obtained after 100 cycles at 200 mA g(-1). Even increasing the current density to 1 A g(-1), high reversible charge/discharge capacities of 740.0/747.0 mAh g(-1) are still remained after 200 cycles. In addition, cyclic voltammetry (CV) and electrochemical impedance spectroscopy (EIS) are performed to further study the composite material prepared by facile microwave hydrothermal method. It is considered to be a high efficient way to obtain SnO2/graphene composite with excellent electrochemical properties as anode material for applications. (C) 2017 Elsevier Ltd. All rights reserved.
机译:由于其高特定容量和低开口电位,SnO2具有锂离子电池(LIBS)的阳极材料。然而,它的电子电导率差以及严重的体积效果显着限制了其在LIBS中的应用。在这项工作中,进行辅助微波的容易水热方法进行,以在没有任何螯合剂的情况下在仅30分钟内实现SnO2和石墨烯的复合物。它是高度效率的,相对高的SnO2负载量为89.97重量%。%。 SnO2孔的超大纳米颗粒在石墨烯表面上,平均粒度为3-8nm,表面积较大417.45m(2)g(-1)。同时,在200mA G(-1)的100次循环后获得高充电/放电容量为969.4 / 978.6mAhg(-1)。甚至将电流密度增加到1Ag(-1),高可逆充电/放电容量为740.0 / 747.0mAhg(-1)仍然保持在200次循环之后。另外,进行循环伏安法(CV)和电化学阻抗光谱(EIS)以进一步研究通过容易微波水热方法制备的复合材料。认为具有优异的电化学性能作为应用的优异电化学性能作为阳极材料的高效方法。 (c)2017 Elsevier Ltd.保留所有权利。

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