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首页> 外文期刊>ACS applied materials & interfaces >Synthesis and Electrochemical Reaction of Tin Oxalate-Reduced Graphene Oxide Composite Anode for Rechargeable Lithium Batteries
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Synthesis and Electrochemical Reaction of Tin Oxalate-Reduced Graphene Oxide Composite Anode for Rechargeable Lithium Batteries

机译:可充电锂电池锡的石油酸盐氧化石墨烯氧化物复合阳极的合成与电化学反应

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Unlike for SnO2, few studies have reported on the use of SnC2O4 as an anode material for rechargeable lithium batteries. Here, we first introduce a SnC2O4-reduced graphene oxide composite produced via hydrothermal reactions followed by a layer-by-layer self-assembly process. The addition of rGO increased the electric conductivity up to similar to 10(-3) S cm(-1). As a result, the SnC2O4-reduced graphene oxide electrode exhibited a high charge (oxidation) capacity of similar to 1166 mAh g(-1) at a current of 100 mA g(-1) (0.1 C-rate) with a good retention delivering approximately 620 mAh g(-1) at the 200th cycle. Even at a rate of 10 C (10 A g(-1)), the composite electrode was able to obtain a charge capacity of 467 mAh g(-1). In contrast, the bare SnC2O4 had inferior electrochemical properties relative to those of the SnC2O4-reduced graphene oxide composite: similar to 643 mAh g(-1) at the first charge, retaining 192 mAh g(-1) at the 200th cycle and 289 mAh g(-1) at 10 C. This improvement in electrochemical properties is most likely due to the improvement in electric conductivity, which enables facile electron transfer via simultaneous conversion above 0.75 V and de/alloy reactions below 0.75 V: SnC2O4 + 2Li(+) + 2e(-) -> Sn + Li2C2O4 + xLi(+) + xe(-) -> LixSn on discharge (reduction) and vice versa on charge. This was confirmed by systematic studies of ex situ X-ray diffraction, transmission electron microscopy, and time-of-flight secondary-ion mass spectroscopy.
机译:与SnO2不同,少数研究报告了使用SNC2O4作为可充电锂电池的阳极材料。在此,我们首先通过水热反应引入通过层热反应产生的SNC2O4-还原的石墨烯氧化物复合物。添加Rgo的添加增加到相似的电导率至10(-3)厘米(-1)。结果,SNC2O4-还原的石墨烯氧化物电极显示出在100mA g(-1)(0.1c速率)的电流下的高电荷(氧化)容量,其电流为100 mA g(-1)(0.1c速率),良好在第200个周期中提供大约620 Mah G(-1)。即使以10℃的速率(10Ag(-1)),复合电极也能够获得467mAhg(-1)的电荷容量。相反,裸SnC2O4相对于SNC2O4-还原的石墨烯氧化物复合材料的较差的电化学性质:在第一电荷下类似于643mAhg(-1),在第200周期保持192mAhg(-1)和289 Mah G(-1)在10℃下。电化学性能的这种改善最有可能是由于导电性的改善,这使得通过同时转化能够通过同时转化为0.75V和低于0.75V:SNC2O4 + 2LI( +)+ 2E( - ) - > Sn + Li2C2O4 + XLI(+)+ XE( - ) - > Lixsn放电(减少),反之亦然。这是通过对原地X射线衍射,透射电子显微镜和飞行时间二次离子质谱的系统研究来证实。

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