Lee Hyo Bin, Dinh Hoang Trung, Byeon Yun Seong, Jung Hyuck, Moon Janghyuk, Park Min-Sik
Department of Advanced Materials Engineering for Information and Electronics, Integrated Education Institute for Frontier Science & Technology (BK21 Four), Kyung Hee University, 1732 Deogyeong-daero, Giheung-gu, Yongin 17104, Republic of Korea.
School of Energy Systems Engineering, Chung-Ang University, Heukseok-Ro, Dongjak-Gu, Seoul 06974, Republic of Korea.
ACS Appl Mater Interfaces. 2022 Jan 19;14(2):2731-2741. doi: 10.1021/acsami.1c19443. Epub 2022 Jan 5.
Recently, Ni-rich layered cathode materials have become the most common material used for lithium-ion batteries. From a structural viewpoint, it is crucial to stabilize the surface structures of such materials, as they are prone to undesirable side reactions and particle cracking in which intergranular microcracks form at the particle surfaces and then propagate inside. As a simplified engineering technique for obtaining Ni-rich cathode materials with high reversibility and long-term cycling stability, we propose a facile surface coating of piezoelectric LiTaO onto a Ni-rich cathode material to enhance the charge transfer reaction and surface structural integrity. Based on theoretical and experimental investigation, we demonstrate that this surface protection approach is effective at enhancing the reversibility and mechanical strength of Ni-rich cathode materials, leading to a stable cycle performance at up to 150 cycles, even at 60 °C. Furthermore, the piezoelectric characteristics of the surface LiTaO can enhance the rate capability of Ni-rich cathode materials at current densities of up to 2.0C. The results of this study provide a practical insight on the development of Ni-rich cathode materials for practical use in electric vehicle applications.
最近,富镍层状正极材料已成为锂离子电池最常用的材料。从结构角度来看,稳定此类材料的表面结构至关重要,因为它们容易发生不良副反应和颗粒开裂,其中颗粒表面会形成晶间微裂纹,然后在内部扩展。作为一种获得具有高可逆性和长期循环稳定性的富镍正极材料的简化工程技术,我们提出在富镍正极材料上 facile 表面涂覆压电 LiTaO,以增强电荷转移反应和表面结构完整性。基于理论和实验研究,我们证明这种表面保护方法在提高富镍正极材料的可逆性和机械强度方面是有效的,即使在 60°C 下,也能在高达 150 次循环中实现稳定的循环性能。此外,表面 LiTaO 的压电特性可以提高富镍正极材料在高达 2.0C 的电流密度下的倍率性能。本研究结果为开发用于电动汽车实际应用的富镍正极材料提供了实际见解。