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Advanced Li-rich cathode collaborated with graphite/silicon anode for high performance Li-ion batteries in half and full cells

机译:先进的富锂阴极与石墨/硅阳极合作,用于半电池和全电池的高性能锂离子电池

摘要

A high performance surface modified Li1.2Mn0.534Ni0.133Co0.133O2 cathode with graphene and CNTs (GNL-modified LMNCO) has been synthesized via a simple ultrasonic dispersion approach. Its morphology and electrochemical performance are investigated thoroughly in this work. Typically, the GNL-modified LMNCO demonstrates an initial discharge capacity of 285.8 mAh g-1, showing initial coulombic efficiency of 83.3%. In addition, impressive discharge capacity of 162.3 and 123.5 mAh g-1 are obtained at 5 and 10 C, respectively. More satisfactorily, it reveals high capacity retention of 217.9 mAh g-1 even after the 180th cycle. The extraordinary electrochemical performance of the GNL-modified LMNCO can be ascribed to the unique conducting network of graphene and CNTs coating on the particles, which greatly improves the conductivity of the electrode and enhances the diffusion coefficient of the Li+. Most significantly, a high-voltage and high-power electrochemical energy storage devices of lithium-ion battery (LIB) full cell has been simultaneously assembled with the GNL-modified LMNCO as cathode and silicon/graphite/amorphous carbon (Si/C) composite as anode, whose properties outclass many other systems of LIB full cells. Therefore, the acquaintance of the compatibility of the Li-rich cathode and Si/C composite anode for high-voltage and high-energy LIB full cells should attract more research efforts in the future.
机译:通过简单的超声分散方法,合成了具有石墨烯和碳纳米管的高性能表面改性Li1.2Mn0.534Ni0.133Co0.133O2阴极(GNL改性LMNCO)。在这项工作中,对其形态和电化学性能进行了深入研究。通常,经GNL修饰的LMNCO的初始放电容量为285.8 mAh g-1,显示初始库仑效率为83.3%。此外,在5和10 C时分别获得了162.3和123.5 mAh g-1的惊人放电容量。更令人满意的是,即使在第180次循环后,它仍显示217.9 mAh g-1的高容量保持率。 GNL改性LMNCO的出色电化学性能可以归因于石墨烯和碳纳米管在颗粒上的独特导电网络,极大地提高了电极的电导率并增强了Li +的扩散系数。最重要的是,锂离子电池(LIB)全电池的高电压和高功率电化学储能装置已与GNL改性的LMNCO作为阴极和硅/石墨/非晶碳(Si / C)复合材料同时组装作为阳极,其性能优于许多其他LIB全电池系统。因此,对于高电压,高能量的LIB全电池来说,富锂阴极与Si / C复合阳极的相容性应该会吸引更多的研究工作。

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