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Electrochemical Properties of Tin Oxide Flake/Reduced Graphene Oxide/Carbon Composite Powders as Anode Materials for Lithium-Ion Batteries

机译:氧化锡鳞片/氧化石墨烯/碳复合粉作为锂离子电池负极材料的电化学性能

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摘要

Hierarchically structured tin oxide/reduced graphene oxide (RGO)/carbon composite powders are prepared through a one-pot spray pyrolysis process. SnO nanoflakes of several hundred nanometers in diameter and a few nanometers in thickness are uniformly distributed over the micrometer-sized spherical powder particles. The initial discharge and charge capacities of the tin oxide/RGO/carbon composite powders at a current density of 1000mAg(-1) are 1543 and 1060mAhg(-1), respectively. The discharge capacity of the tin oxide/RGO/carbon composite powders after 175 cycles is 844mAhg(-1), and the capacity retention measured from the second cycle is 80%. The transformation during cycling of SnO nanoflakes, uniformly dispersed in the tin oxide/RGO/carbon composite powder, into ultrafine nanocrystals results in hollow nanovoids that act as buffers for the large volume changes that occur during cycling, thereby improving the cycling and rate performances of the tin oxide/RGO/carbon composite powders.
机译:分层结构的氧化锡/还原氧化石墨烯(RGO)/碳复合粉末是通过一锅法喷雾热解工艺制备的。直径为几百纳米,厚度为几纳米的SnO纳米薄片均匀地分布在微米级的球形粉末颗粒上。氧化锡/ RGO /碳复合粉末在电流密度为1000mAg(-1)时的初始放电和充电容量分别为1543和1060mAhg(-1)。 175次循环后氧化锡/ RGO /碳复合粉末的放电容量为844mAhg(-1),从第二次循环测量的容量保持率为80%。 SnO纳米片在循环过程中均匀地分散在氧化锡/ RGO /碳复合粉末中,转变为超细纳米晶体,形成空心纳米空隙,可作为缓冲剂,以防止循环过程中发生大体积变化,从而改善了循环和速率性能氧化锡/ RGO /碳复合粉。

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