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采用局部饱和电解质将层状LiCoO运行至更高电压

Operation of Layered LiCoO to Higher Voltages with a Localized Saturated Electrolyte.

作者信息

Adamo J Brandon, Su Laisuo, Manthiram Arumugam

机构信息

Materials Science and Engineering Program and Texas Materials Institute, The University of Texas at Austin, Austin, Texas 78712, United States.

出版信息

ACS Appl Mater Interfaces. 2023 Mar 29;15(12):15458-15466. doi: 10.1021/acsami.2c22786. Epub 2023 Mar 15.

Abstract

The commercialization of lithium-ion batteries started with a layered LiCoO (LCO) cathode for portable electronics, but only 50% of its theoretical capacity can be used in practical cells due to detrimental surface and bulk degradations when charged to high voltages. We demonstrate here that the stability of the electrolyte plays a critical role in the performance of LCO at high voltages by employing a localized saturated electrolyte (LSE). With a cutoff voltage of 4.5 V, LCO achieves an initial 1 C discharge capacity of 176 mA h g and a capacity retention of 80% over 230 cycles. Even with a cutoff voltage of 4.6 V, LCO with 2% aluminum doping displays an initial discharge capacity of 189 mA h g at 1 C rate with 80% capacity retention over 137 cycles. With extensive analytical characterization, we show that the improved cycling stability stems from a suppression of the O3 to H1-3 phase transition as well as a robust inorganic-rich cathode-electrolyte interphase (CEI) facilitated by the LSE. This work highlights the importance of protecting the surface as well as the bulk with appropriate electrolytes for the high-voltage, higher-energy-density operation of LCO.

摘要

锂离子电池的商业化始于用于便携式电子产品的层状LiCoO(LCO)阴极,但由于在高电压充电时表面和整体会发生有害降解,其实际电池中只能使用50%的理论容量。我们在此证明,通过采用局部饱和电解质(LSE),电解质的稳定性在LCO在高电压下的性能中起着关键作用。在截止电压为4.5 V时,LCO在1 C下的初始放电容量为176 mA h/g,在230次循环中的容量保持率为80%。即使在截止电压为4.6 V时,2%铝掺杂的LCO在1 C倍率下的初始放电容量为189 mA h/g,在137次循环中的容量保持率为80%。通过广泛的分析表征,我们表明,循环稳定性的提高源于对O3到H1-3相变的抑制以及由LSE促进的坚固的富无机阴极-电解质界面(CEI)。这项工作突出了用合适的电解质保护表面和整体对于LCO的高电压、更高能量密度运行的重要性。

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