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用于高面质量负载下LiNiMnCoO正极稳定循环的分级导电网络构建

Construction of Hierarchical Conductive Networks for LiNiMnCoO Cathode toward Stable Cycling at High Areal Mass Loadings.

作者信息

Wei Lu, Wu Hongyuan, Liu Songtao, Zhou Yuyu, Guo Xin

机构信息

State Key Laboratory of Material Processing and Die & Mould Technology, School of Materials Science and Engineering, Huazhong University of Science and Technology, Wuhan, 430074, China.

出版信息

Small. 2024 Aug;20(34):e2312059. doi: 10.1002/smll.202312059. Epub 2024 Apr 11.

Abstract

Realizing high-performance thick electrodes is considered as a practical strategy to promote the energy density of lithium-ion batteries. However, establishing effective transport pathways for both lithium-ions and electrons in a thick electrode is very challenging. This study develops a hierarchical conductive network structure for constructing high-performance NMC811 (LiNiMnCoO) cathode toward stable cycling at high areal mass loadings. The hierarchical conductive networks are composed of a Li/e mixed conducting interface (lithium polyacrylate/hydroxyl-functionalized multiwalled carbon nanotubes) on NMC811 particles, and a segregated network of single-walled carbon nanotubes in the electrode, without any additional binders or carbon black. Such strategy endows the NMC811 cathode (up to 250 µm and 50 mg cm) with low porosity/tortuosity, ultrahigh Li/e conductivities and excellent mechanical property at low carbon nanotube content (1.8 wt%). It significantly improves the electrochemical reaction homogeneity along the electrode depth, meanwhile effectively inhibits the side reactions at the electrode/electrolyte interface and cracks in the NMC particles during cycling. This work emphasizes the crucial role of the electronic/ionic cooperative transportation in the performance deterioration of thick cathodes, and provide guidance for architecture optimization and performance improvement of thick electrodes toward practical applications, not just for the NMC811 cathode.

摘要

实现高性能厚电极被认为是提高锂离子电池能量密度的一种切实可行的策略。然而,在厚电极中为锂离子和电子建立有效的传输路径极具挑战性。本研究开发了一种分级导电网络结构,用于构建高性能的NMC811(LiNiMnCoO)正极,以实现高面质量负载下的稳定循环。该分级导电网络由NMC811颗粒上的锂/电子混合导电界面(聚丙烯酸锂/羟基官能化多壁碳纳米管)和电极中的单壁碳纳米管隔离网络组成,无需任何额外的粘结剂或炭黑。这种策略赋予了NMC811正极(厚度达250 µm,面质量为50 mg cm)在低孔隙率/曲折度、超高的锂/电子电导率以及在低含量碳纳米管(1.8 wt%)下具有优异的机械性能。它显著提高了沿电极深度的电化学反应均匀性,同时有效抑制了循环过程中电极/电解质界面处的副反应以及NMC颗粒中的裂纹。这项工作强调了电子/离子协同传输在厚正极性能劣化中的关键作用,并为厚电极在实际应用中的结构优化和性能提升提供了指导,而不仅仅适用于NMC811正极。

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