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Effect of Low Cell Voltages on the Performance of MCMB anode and LiNi_(0.8)Co_(0.2)O_2 cathode

机译:低电池电压对MCMB阳极性能和LINI_(0.8)CO_(0.2)O_2阴极性能的影响

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Lithium-ion cells employing graphitic anodes (graphite or MCMB) and lithiated metal oxide cathodes, Li(Ni,Co,Al)O_2 are generally intolerant to low cell voltages, which is often attributed to the side reactions on the anode. Even though dissolution of the copper substrate at the anode is not thermodynamically favored at the anode potentials positive to lithium, mild copper dissolution was often reported to occur at positive potentials. Furthermore, the cell performance appears to degrade upon exposure to low voltages, even without any visible copper dissolution. One of the engineering batteries for the NASA Mars Science Laboratory (MSL) mission sustained a high impedance short due to a failure in the harness insulation, which resulted in the deep-discharge of multiple cells to low voltages, and an overall performance loss in these cells. Results from the laboratory test cells confirm the trend in the performance degradation as a function of low voltage exposure and point to, surprisingly, a degradation of the cathode, more than the anode. Electrochemical measurements, both ac impedance (EIS) and DC polarization show an unexpected trend that the cathode kinetics are affected by the deep-discharges to low voltages.
机译:采用石墨阳极(石墨或MCMB)和锂化金属氧化物阴极,Li(Ni,Co,Al)O_2的锂离子细胞通常与低电池电压不宽,其通常归因于阳极上的副反应。尽管在阳极处的铜基板溶解在锂锂的阳极电位下没有热力学上偏好,但通常据报道,通常报告轻度铜溶解以在正电位下发生。此外,即使没有任何可见的铜溶解,也会在暴露于低电压时似乎降低细胞性能。 NASA MARS Science实验室(MSL)任务的工程电池之一由于线束绝缘的故障而持续了高阻抗短,这导致多个电池的深度放电,以及这些整体性能损失细胞。来自实验室测试单元的结果证实了性能下降的趋势,作为低电压曝光和令人惊讶的是,阴极的降解,比阳极更多。电化学测量,AC阻抗(EIS)和DC偏振均显示了阴极动力学受到低电压的深度放电影响的意外趋势。

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