Beijing Advanced Innovation Center for Materials Genome Engineering, Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China.
Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing 100049, China.
ACS Appl Mater Interfaces. 2023 Feb 1;15(4):5326-5335. doi: 10.1021/acsami.2c21006. Epub 2023 Jan 23.
The ever-growing demand for portable electronic devices has put forward higher requirements on the energy density of layered LiCoO (LCO). The unstable surface structure and side reactions with electrolytes at high voltages (>4.5 V) however hinder its practical applications. Here, considering the high-voltage stability and three-dimensional lithium-ion transport channel of the high-voltage Li-containing spinel (M = Ni and Co) LiMMnO, we design a conformal and integral LiNiCoMnO spinel coating on the surface of LCO via a sol-gel method. The accurate structure of the coating layer is identified to be a spinel solid solution with gradient element distribution, which compactly covers the LCO particle. The coated LCO exhibits significantly improved cycle performance (86% capacity remained after 100 cycles at 0.5C in 3-4.6 V) and rate performance (150 mAh/g at a high rate of 5C). The characterizations of the electrodes from the bulk to surface suggest that the conformal spinel coating acts as a physical barrier to inhibit the side reactions and stabilize the cathode-electrolyte interface (CEI). In addition, the artificially designed spinel coating layer is well preserved on the surface of LCO after prolonged cycling, preventing the formation of an electrochemically inert CoO phase and ensuring fast lithium transport kinetics. This work provides a facile and effective method for solving the surface problems of LCO operated at high voltages.
不断增长的对便携式电子设备的需求对层状 LiCoO(LCO)的能量密度提出了更高的要求。然而,其不稳定的表面结构和与电解质在高电压(>4.5V)下的副反应阻碍了其实际应用。在这里,考虑到高压含锂尖晶石(M=Ni 和 Co)LiMMnO 的高电压稳定性和三维锂离子传输通道,我们通过溶胶-凝胶法在 LCO 表面设计了一种共形和整体的 LiNiCoMnO 尖晶石涂层。涂层层的准确结构被确定为具有梯度元素分布的尖晶石固溶体,它紧密覆盖 LCO 颗粒。涂覆的 LCO 表现出显著改善的循环性能(在 3-4.6V 下以 0.5C 的倍率循环 100 次后容量保持率为 86%)和倍率性能(在 5C 的高倍率下为 150mAh/g)。从体相到表面的电极特性表明,共形尖晶石涂层作为物理阻挡层,抑制副反应并稳定阴极-电解质界面(CEI)。此外,经过长时间循环后,在 LCO 表面很好地保留了人工设计的尖晶石涂层,防止形成电化学惰性的 CoO 相并确保快速的锂离子传输动力学。这项工作为解决高压下 LCO 的表面问题提供了一种简便有效的方法。