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LiCO作为NMC622||硅/石墨锂离子电池正极预锂化添加剂的机遇与挑战

Opportunities and Challenges of Li C O as Pre-Lithiation Additive for the Positive Electrode in NMC622||Silicon/Graphite Lithium Ion Cells.

作者信息

Gomez-Martin Aurora, Gnutzmann Maike Michelle, Adhitama Egy, Frankenstein Lars, Heidrich Bastian, Winter Martin, Placke Tobias

机构信息

MEET Battery Research Center, Institute of Physical Chemistry, University of Münster, Corrensstr. 46, Münster, 48149, Germany.

International Graduate School for Battery Chemistry, Characterization, Analysis, Recycling and Application (BACCARA), University of Münster, Corrensstr. 40, Münster, 48149, Germany.

出版信息

Adv Sci (Weinh). 2022 Aug;9(24):e2201742. doi: 10.1002/advs.202201742. Epub 2022 Jul 7.

Abstract

Silicon (Si)-based negative electrodes have attracted much attention to increase the energy density of lithium ion batteries (LIBs) but suffer from severe volume changes, leading to continuous re-formation of the solid electrolyte interphase and consumption of active lithium. The pre-lithiation approach with the help of positive electrode additives has emerged as a highly appealing strategy to decrease the loss of active lithium in Si-based LIB full-cells and enable their practical implementation. Here, the use of lithium squarate (Li C O ) as low-cost and air-stable pre-lithiation additive for a LiNi Mn Co O (NMC622)-based positive electrode is investigated. The effect of additive oxidation on the electrode morphology and cell electrochemical properties is systematically evaluated. An increase in cycle life of NMC622||Si/graphite full-cells is reported, which grows linearly with the initial amount of Li C O , due to the extra Li ions provided by the additive in the first charge. Post mortem investigations of the cathode electrolyte interphase also reveal significant compositional changes and an increased occurrence of carbonates and oxidized carbon species. This study not only demonstrates the advantages of this pre-lithiation approach but also features potential limitations for its practical application arising from the emerging porosity and gas development during decomposition of the pre-lithiation additive.

摘要

硅基负极在提高锂离子电池(LIBs)能量密度方面备受关注,但存在严重的体积变化问题,导致固体电解质界面不断重新形成并消耗活性锂。借助正极添加剂的预锂化方法已成为一种极具吸引力的策略,可减少硅基LIB全电池中活性锂的损失并实现其实际应用。在此,研究了使用方形锂盐(Li₂C₂O₄)作为基于LiNi₀.₆Mn₀.₂Co₀.₂O₂(NMC622)的正极的低成本且空气稳定的预锂化添加剂。系统评估了添加剂氧化对电极形态和电池电化学性能的影响。据报道,NMC622||Si/石墨全电池的循环寿命有所增加,由于添加剂在首次充电时提供了额外的锂离子,其循环寿命与Li₂C₂O₄的初始量呈线性增长。对阴极电解质界面的事后研究还揭示了显著的成分变化以及碳酸盐和氧化碳物种出现频率的增加。这项研究不仅证明了这种预锂化方法的优点,还指出了其实际应用中由于预锂化添加剂分解过程中出现的孔隙率和气体产生而存在的潜在局限性。

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