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Bimetallic CoMoS Composite Anchored to Biocarbon Fibersas a High-Capacity Anode for Li-Ion Batteries

机译:生物碳纤维锚固的双金属CoMoS复合材料作为锂离子电池的大容量阳极

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摘要

Our work reports the hydrothermal synthesis of a bimetallic composite CoMoS, followed by the addition of cellulose fibers and its subsequent carbonization under Ar atmosphere (CoMoS@C). For comparison, CoMoS was heat-treated under the same conditions and referred as bare-CoMoS. X-ray diffraction analysis indicates that CoMoS@C composite matches with the CoMoS4 phase with additional peaks corresponding to MoO3 and CoMoO4 phases, which probably arise from air exposure during the carbonization process. Scanning electron microscopy images of CoMoS@C exhibit how the CoMoS material is anchored to the surface of carbonized cellulose fibers. As anode material, CoMoS@C shows a superior performance than bare-CoMoS. The CoMoS@C composite presents an initial high discharge capacity of ∼1164 mA h/g and retains a high specific discharge capacity of ∼715 mA h/g after 200 cycles at a current density of 500 mA/g compared to that of bare-CoMoS of 102 mA h/g. The high specific capacity and good cycling stability could be attributed to the synergistic effectsof CoMoS and carbonized cellulose fibers. The use of biomass in theanode material represents a very easy and cost-effective way to improvethe electrochemical Li-ion battery performance.
机译:我们的工作报告了双金属复合CoMoS的水热合成,然后添加了纤维素纤维,随后在Ar气氛下(CoMoS @ C)进行了碳化。为了进行比较,在相同条件下对CoMoS进行了热处理,称为裸CoMoS。 X射线衍射分析表明CoMoS @ C复合材料与CoMoS4相匹配,并具有对应于MoO3和CoMoO4相的附加峰,这可能是由于碳化过程中暴露于空气引起的。 CoMoS @ C的扫描电子显微镜图像显示了CoMoS材料如何锚固在碳化纤维素纤维的表面。作为负极材料,CoMoS @ C表现出比裸CoMoS更好的性能。 CoMoS @ C复合材料的初始高放电容量约为1164 mA h / g,并且在200次循环后,在500 mA / g的电流密度下与裸露的相比,仍具有约715 mA h / g的高比放电容量。 ComAS为102 mA h / g。高比容量和良好的循环稳定性可归因于协同作用CoMoS和碳化纤维素纤维。在生物质中的使用阳极材料代表了一种非常简单且经济高效的改进方法电化学锂离子电池的性能。

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