Sun Yan-Yun, Hou Pei-Yu, Zhang Lan-Chun
School of Automobile and Traffic Engineering, Jiangsu University of Technology, Jiangsu Province, 213001, China.
School of Physics and Technology, University of Jinan, Jinan, Shandong Province 250022, China.
ACS Appl Mater Interfaces. 2020 Mar 25;12(12):13923-13930. doi: 10.1021/acsami.9b23470. Epub 2020 Mar 13.
Increasing attention has been paid to layered high-Ni oxides with high capacity as a promising cathode for high-energy lithium-ion batteries. However, the undesirable microcracks in secondary particles usually occur due to the volume changes of anisotropic primary grains during cycles, which lead to the decay of electrochemical performance. Here, for the first time, a functional electrolyte with di-sec-butoxyaluminoxytriethoxysilane additive integrating the functions of silane and aluminate is proposed to form the binder-like filler between anisotropic primary grains for mitigating the microcracks of high-Ni oxides. It is demonstrated that Li-containing aluminosilicate as a glue layer between the gaps of grains and as a coating layer on the surface of the grains is generated, and these features further enhance the interfacial bonding and surface stability of anisotropic primary grains. Consequently, the microcracks along with side reactions and phase transitions of high-Ni oxides are mitigated. As anticipated, the electrochemical performance and thermal stability of high-Ni oxides are improved, and there is also a capacity retention of 75.4% even after 300 cycles and large reversible capacity of ∼160 mA h g at 5 C. The functional electrolyte offers a simple, efficient, and scalable method to promote the electrochemical properties and applicability of high-Ni oxide cathodes in high-energy lithium-ion batteries.
作为高能量锂离子电池有前景的正极材料,具有高容量的层状高镍氧化物受到了越来越多的关注。然而,由于循环过程中各向异性一次颗粒的体积变化,二次颗粒中通常会出现不良微裂纹,这导致了电化学性能的衰减。在此,首次提出一种含有二仲丁氧基铝氧基三乙氧基硅烷添加剂的功能性电解质,该电解质整合了硅烷和铝酸盐的功能,以在各向异性一次颗粒之间形成类似粘合剂的填料,从而减轻高镍氧化物的微裂纹。结果表明,在颗粒间隙之间生成了含锂铝硅酸盐作为胶层,并在颗粒表面形成了涂层,这些特性进一步增强了各向异性一次颗粒的界面结合力和表面稳定性。因此,高镍氧化物的微裂纹以及副反应和相变得到了缓解。正如预期的那样,高镍氧化物的电化学性能和热稳定性得到了改善,即使在300次循环后,在5 C下仍有75.4%的容量保持率和约160 mA h g的大可逆容量。这种功能性电解质提供了一种简单、高效且可扩展的方法,以促进高镍氧化物正极在高能量锂离子电池中的电化学性能和适用性。