Shen Chao, Liu Yiqian, Li Wenrong, Liu Xiaoyu, Xie Jingwei, Jiang Jinlong, Jiang Yong, Zhao Bing, Zhang Jiujun
School of Environmental and Chemical Engineering, Shanghai University, Shanghai 200444, China.
School of Environmental and Chemical Engineering, Shanghai University, Shanghai 200444, China; College of Sciences/Institute for Sustainable Energy, Shanghai University, Shanghai 200444, China.
J Colloid Interface Sci. 2022 Jun;615:1-9. doi: 10.1016/j.jcis.2022.01.176. Epub 2022 Jan 30.
High-energy-density lithium-rich LiNiCoMnO is regarded as one of the most promising cathode materials for lithium-ion batteries. However, its practical application is restricted by critical kinetics drawbacks and poor low-temperature electrochemical performances. In this research, LiNiCoMnO submicron particles coated by a LiLaZrO (LLZO) layer and co-doped by La/Zr cations has been fabricated via a facile one-pot sol-gel technique and subsequent heat treatment. The coating LLZO layer with a few nanometers is able to build a rapid lithium-ion transport channel for adjacent particles and suppress severe side reactions between active material and the electrolyte. Moreover, large-radius La/Zr cations co-doping can broaden the diffusion paths of lithium ions, hinder the detrimental structural transformation, and improve the electrochemical structure stability of the cathode during repeated cycles. Owing to numerous merits from this multifunctional surface modification strategy, the modified LiNiCoMnO composite exhibits the significantly decreased interface impedance, enhanced Li diffusion kinetics and mitigated phase transformation, as well as excellent low-temperature electrochemical performance. It can contribute ultrahigh capacities of 173.8 mAh g at -10 ℃ and 134.1 mAh g at -20 ℃, respectively, displaying great application prospects of Li-rich cathode materials.
高能量密度的富锂LiNiCoMnO被认为是锂离子电池最有前途的正极材料之一。然而,其实际应用受到关键动力学缺陷和低温电化学性能差的限制。在本研究中,通过简便的一锅溶胶-凝胶技术和随后的热处理制备了由LiLaZrO(LLZO)层包覆并由La/Zr阳离子共掺杂的LiNiCoMnO亚微米颗粒。几纳米厚的LLZO包覆层能够为相邻颗粒构建快速的锂离子传输通道,并抑制活性材料与电解质之间的严重副反应。此外,大半径的La/Zr阳离子共掺杂可以拓宽锂离子的扩散路径,阻碍有害的结构转变,并提高正极在重复循环过程中的电化学结构稳定性。由于这种多功能表面改性策略的诸多优点,改性后的LiNiCoMnO复合材料表现出显著降低的界面阻抗、增强的锂扩散动力学和减轻的相变,以及优异的低温电化学性能。它在-10℃和-20℃时分别可贡献173.8 mAh g和134.1 mAh g的超高容量,展现出富锂正极材料巨大的应用前景。