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Enhancing high-rate and elevated-temperature properties of Ni-Mg co-doped LiMn2O4 cathodes for Li-ion batteries

机译:提高锂离子电池的Ni-Mg共掺杂Limn2O4阴极的高速率和升高 - 温度

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The improvements of cyclability and rate capability of lithium ion batteries with spinel LiMn2O4 as cathode are imperative demands for the large-scale practical applications. Herein, a nickel (Ni) and magnesium (Mg) co-doping strategy was employed to synthesize LiNi0.03Mg0.05Mn1.92O4 cathode material via a facile solid-state combustion approach. The effects of the Ni-Mg co-doping on crystalline structure, micromorphology and electrochemical behaviors of the as-prepared LiNi0.03Mg0.05Mn1.92O4 are investigated by a series of physico-chemical characterizations and performance tests at high-rate and elevated-temperature. The resultant LiNi0.03Mg0.05Mn1.92O4 has the intrinsic spinel structure with no any impurities, and exhibits an elevated average valence of manganese in comparison to the pristine LiMn2O4. Owing to the Ni and Mg dual-doped merits, the LiNi0.03Mg0.05Mn1.92O4 sample demonstrates a robust spinel structure and high first discharge specific capacity of 112.3 mAh g(-1), whilst undergoing a long cycling of 1000 cycles at 1 C. At a high current rate of 20 C, the capacity of 91.2 mAh g(-1) with an excellent retention of 77% is obtained after 1000 cycles. Even at 10 C under 55 degrees C, an excellent capacity of 97.6 mAh g(-1) is also delivered. These results offer a new opportunity for developing high-performance lithium ion batteries with respect to the Ni-Mg co-doping strategy. (C) 2019 Elsevier Inc. All rights reserved.
机译:锂离子电池与尖晶石Limn2O4作为阴极的可靠性和速率能力的改进是对大规模实际应用的必要要求。在此,采用镍(Ni)和镁(Mg)共掺杂策略通过容易固态燃烧方法合成LiNi0.03mg0.05mn1.92O4阴极材料。 Ni-Mg协同掺杂对制备的MAD​​INA10.03MG0.05MN1.92O4的微晶结构,微晶和电化学行为进行了一系列物理化学表征和高速的性能测试,并高升高 - 温度。得到的LINI0.03mg0.05mN1.92O4具有没有任何杂质的内在尖晶石结构,与原始LIMN2O4相比,锰的平均级合格升高。由于NI和MG双掺杂的优点,LINI0.03MG0.05MN1.92O4样品显示了强大的尖晶石结构和112.3mAhg(-1)的高级放电比容量,同时在1时经历长循环的长循环1000周期C.在20℃的高电流速率下,在1000次循环后获得91.2mAhg(-1)77%的容量。即使在55摄氏度下的10℃下,也可以递送97.6mAhg(-1)的优异容量。这些结果为开发高性能锂离子电池而言提供了关于Ni-Mg共掺杂策略的新机会。 (c)2019 Elsevier Inc.保留所有权利。

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