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首页> 外文期刊>Advanced energy materials >A Study of Model-Based Protective Fast-Charging and Associated Degradation in Commercial Smartphone Cells: Insights on Cathode Degradation as a Result of Lithium Depositions on the Anode
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A Study of Model-Based Protective Fast-Charging and Associated Degradation in Commercial Smartphone Cells: Insights on Cathode Degradation as a Result of Lithium Depositions on the Anode

机译:商业智能手机单元中模型保护性快速充电及相关降解研究:阳极锂沉积锂沉积导致阴极降解的见解

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摘要

The ever expanding mobile consumer electronic market has accelerated the need for safe and efficient fast-charging approaches that improve the overall speed of battery charging without hastened deterioration of the battery performance. Herein, the impact of a resource inexpensive, physics-based, electrochemically optimized fast-charging algorithm (charging time 2 h) for mobile devices is investigated. A critical difference in the amount and morphology of lithium deposits on the anode for cells fast-charged without an optimized algorithm is observed and found to be the main cause of capacity decay. An in-depth study of the LiCoO2 cathode regions opposite to pronounced lithium deposits on the anode reveals a "mirroring" phenomenon, i.e., a frozen monoclinic phase, and inactivity to relithiation. In operando hard X-ray absorption spectroscopy reveals that degraded spots on harvested cathodes seem to be activated again and participate in the intercalation process when lithiated at low rates from lithium foil counter electrodes. On the other hand, tests at higher C-rates, closer to the actual fast-charging rate, reveal only negligible oxidation state changes and therefore poor performance.
机译:由于扩展的移动消费电子市场加速了对安全有效的快速充电方法,可以提高电池充电的总速度,而无需加快电池性能的恶化。这里,研究了用于移动设备的资源廉价,基于物理的电化学优化的快速充电算法(充电时间<2小时)的影响。观察到在没有优化算法的阳极上阳极沉积物的锂沉积物的量和形态的临界差异,发现是容量衰减的主要原因。对阳极上明显锂沉积物相反的LiCoO2阴极区的深入研究揭示了“镜像”现象,即冷冻单晶相,与反相的不活动。在Operando硬X射线吸收光谱揭示了收获阴极上的降解斑点似乎再次被激活,并在锂箔计数器电极的低速率下锂锂化嵌入过程。另一方面,在更高的C率下测试,更接近实际的快速充电率,揭示了可忽略不计的氧化状态变化,因此性能不佳。

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