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LiLaTiO作为一种离子导电添加剂增强锂离子电池中LiNiMnCoO正极的高压性能。

LiLaTiO as an Ionic Conducting Additive Enhancing the High-Voltage Performance of LiNiMnCoO Cathodes in Lithium-Ion Batteries.

作者信息

Wang Tianyang, Jiao Xinwei, Rao Lalith, Stout Meghan, Gibson Amanda, Kidner Neil, Choi Junbin, Kim Jung-Hyun

机构信息

Department of Mechanical and Aerospace Engineering, The Ohio State University, Columbus, Ohio 43212, United States.

Nexceris LLC, 404 Enterprise Dr, Lewis Center, Columbus, Ohio 43035, United States.

出版信息

ACS Appl Mater Interfaces. 2023 Aug 23;15(33):39234-39244. doi: 10.1021/acsami.3c05539. Epub 2023 Aug 12.

Abstract

Although high-voltage (e.g., >4.3 V) operation can increase specific capacity and energy of Ni-rich NMC cathodes, it accelerates the oxidative decomposition of electrolytes and surface degradation of NMC cathodes, leading to rapid capacity fading. This work presents a novel approach that employs LiLaTiO (LLTO) solid-electrolyte as a Li-ion conductor and surface passivation agent to stabilize the cathode/electrolyte interphase (CEI) layer of the LiNiMnCoO (NMC811) cathode and enhance its high-voltage performances. The LLTO particles improve Li-ion transportation across the CEI layer, as evidenced by its reduced impedance in Nyquist plots. Furthermore, passivation of CEI by LLTO mitigates parasitic reactions (e.g., transition metal dissolution) that occur on the graphite solid electrolyte interphase layer during extended cycles of pouch-cells. As a result, pouch-cells with the 1 or 5 wt % LLTO-blended NMC811 cathodes can deliver 19-23% increase in specific capacity and improved cycle life (1000 cycles) at high voltages (up to 4.4 V), comparing to bare NMC811 cathodes. Post-mortem characterization of pouch-cells quantitatively identified the degradation sources of NMC811 cathode at high-voltages, which highlighted the improvement mechanisms of LLTO blended-cathodes.

摘要

尽管高压(例如,>4.3 V)操作可以提高富镍NMC阴极的比容量和能量,但它会加速电解质的氧化分解和NMC阴极的表面降解,导致容量迅速衰减。这项工作提出了一种新颖的方法,即采用LiLaTiO(LLTO)固体电解质作为锂离子导体和表面钝化剂,以稳定LiNiMnCoO(NMC811)阴极的阴极/电解质界面(CEI)层并增强其高压性能。LLTO颗粒改善了锂离子在CEI层中的传输,奈奎斯特图中其阻抗降低证明了这一点。此外,LLTO对CEI的钝化减轻了在软包电池长时间循环过程中在石墨固体电解质界面层上发生的寄生反应(例如,过渡金属溶解)。结果,与裸露的NMC811阴极相比,具有1或5 wt%LLTO混合NMC811阴极的软包电池在高电压(高达4.4 V)下可提供19-23%的比容量增加和改善的循环寿命(1000次循环)。软包电池的死后表征定量确定了NMC811阴极在高电压下的降解来源,这突出了LLTO混合阴极的改善机制。

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