首页> 外文期刊>ACS applied materials & interfaces >Role of Mn Content on the Electrochemical Properties of Nickel-Rich Layered LiNi0.8-xCo0.1Mn0.1+xO2 (0.0 <= x <= 0.08) Cathodes for Lithium-Ion Batteries
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Role of Mn Content on the Electrochemical Properties of Nickel-Rich Layered LiNi0.8-xCo0.1Mn0.1+xO2 (0.0 <= x <= 0.08) Cathodes for Lithium-Ion Batteries

机译:锰含量对富镍层状LiNi0.8-xCo0.1Mn0.1 + xO2(0.0 <= x <= 0.08)锂离子电池阴极电化学性能的影响

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摘要

Ni-rich layered oxides (Ni content >60%) are promising cathode candidates for Li-ion batteries because of their high discharge capacity, high energy density, and low cost. However, fast capacity fading, poor thermal stability, and sensitivity to the ambient moisture still plague their mass application. In this work, we systematically investigate the effects of Mn content on the structure, morphology, electrochemical performance, and thermal stability of the Ni-rich cathode materials LiNi0.8-xCo0.1Mn0.1+xO2 (0.0 = x = 0.08). It is demonstrated that with the increase in Mn content and decrease in Ni content, the cycling stability of LiNi(0.8-x)Co(0.1)Mn(0.1+)xO(2) to a cutoff charge voltage of 4.5 V is significantly improved. The high-Mn-content electrode LiNi0.72Co0.10Mn0.18O2 shows a capacity retention of 85.7% after 100 cycles at a 0.2 C rate at room temperature, much higher than those of the lower Mn-content samples LiNi0.80Co0.10Mn0.10O2 (64.0%) and LiNi0.76Co0.10Mn0.14O2 (72.9%). The improved capacity retention of the high-Mn-content electrode LiNi0.72Co0.10Mn0.18O2 is due to the stabilization of the electrode/electrolyte interface, as evidenced by the lower solid-electrolyte interphase (SEI) resistance and charge-transfer resistance. Furthermore, with the increase in Mn content and decrease in Ni content, the thermal stability of the Ni-rich cathode is also remarkably enhanced.
机译:富镍层状氧化物(镍含量> 60%)由于其高放电容量,高能量密度和低成本而成为锂离子电池的有希望的阴极候选材料。但是,快速的容量衰减,较差的热稳定性以及对环境湿度的敏感性仍然困扰着它们的大规模应用。在这项工作中,我们系统地研究了锰含量对富镍正极材料LiNi0.8-xCo0.1Mn0.1 + xO2(0.0 = x = 0.08)的结构,形态,电化学性能和热稳定性的影响。结果表明,随着Mn含量的增加和Ni含量的减少,LiNi(0.8-x)Co(0.1)Mn(0.1+)xO(2)截止充电电压为4.5 V的循环稳定性得到显着改善。 。高Mn含量的电极LiNi0.72Co0.10Mn0.18O2在室温下以0.2 C的速率经过100次循环后显示了85.7%的容量保持率,远高于低Mn含量的样品LiNi0.80Co0.10Mn0。 10O2(64.0%)和LiNi0.76Co0.10Mn0.14O2(72.9%)。高Mn含量的电极LiNi0.72Co0.10Mn0.18O2的容量保持率提高是由于电极/电解质界面的稳定所致,如较低的固体电解质中间相(SEI)电阻和电荷转移电阻所证明的。此外,随着Mn含量的增加和Ni含量的减少,富Ni阴极的热稳定性也显着提高。

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