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Lithium Manganese Rich Transition Metal Oxide As Cathode Material for Lithium Ion Batteries

机译:富锂锰过渡金属氧化物作为锂离子电池的正极材料

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Electrochemical characterization of lithium and manganese rich composite (xLi_2MnO_3-yLiMO_2) cathode material (LMR-NMC) reveals that the Li_2MnO_3-derived component after initial charge process is continuously oxidized throughout the entire charge process. However, this component only makes the capacity contribution as the operating potential is below 3.6 V (vs. Li/Li~+) during the discharge process. This irreversible redox reaction results into the voltage hysteresis. Structural investigation, such as by XRD confirms an irreversible charge and discharge process. In this work, the impact of cut-off voltage on the LMR-NMC performance was investigated. The voltage fading rate was lessened by lowering the cut-off voltage.
机译:富锂和锰的复合材料(xLi_2MnO_3-yLiMO_2)正极材料(LMR-NMC)的电化学表征表明,初始充电过程后源自Li_2MnO_3-的组分在整个充电过程中都被连续氧化。但是,该组件仅在放电过程中工作电势低于3.6 V(vs. Li / Li〜+)时才产生容量贡献。这种不可逆的氧化还原反应导致电压滞后。 XRD等结构研究证实了不可逆的充放电过程。在这项工作中,研究了截止电压对LMR-NMC性能的影响。通过降低截止电压来降低电压衰减率。

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    Chemical Sciences and Engineering Division, National Laboratory, Lemont, IL 60564, USA;

    Chemical Sciences and Engineering Division, National Laboratory, Lemont, IL 60564, USA;

    Chemical Sciences and Engineering Division, National Laboratory, Lemont, IL 60564, USA;

    Center for Nanomaterials, Argonne National Laboratory, Lemont, IL 60564, USA;

    Chemical Sciences and Engineering Division, National Laboratory, Lemont, IL 60564, USA;

    Chemical Sciences and Engineering Division, National Laboratory, Lemont, IL 60564, USA;

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