Chen Guoshuai, Li Zhujie, Zhao Teng, Wang Ke, Yu Tianyang, Feng Mai, Li Li, Wu Feng, Chen Renjie
Beijing Key Laboratory of Environmental Science and Engineering, School of Material Science & Engineering, Beijing Institute of Technology, Beijing, 100081, China.
Institute of Advanced Technology, Beijing Institute of Technology, Jinan, 250300, China.
Small. 2024 Sep;20(37):e2401465. doi: 10.1002/smll.202401465. Epub 2024 May 15.
Lithium (Li) metal batteries have attracted considerable research attention due to their exceptionally high theoretical capacity. However, the commercialization of Li metal batteries faces challenges, primarily attributed to uncontrolled growth of Li dendrites, which raises safety concerns and lowers coulombic efficiency. To mitigate Li dendrites growth and attain dense Li deposition, the hybrid SiO-CuO lithiophilic film applied to a 3D copper foam current collector is developed to regulate the interfacial properties for achieving even and dense Li deposition. The SiO-CuO possesses strong Li trapping capability through strong lithiophilicity from CuO. Additionally, the SiO-CuO enables uniform ion diffusion through the domain-limiting effect of the holes in the SiO layer, inducing an even and dense Li plating/stripping behavior at a large capacity. Furthermore, the SiO layer promotes the formation of an initial high inorganic content Solid Electrolyte Interphase (SEI) through selective preferential binding with anion and solvent molecules. When the SiO-CuO@Li anode is coupled with a LiFePO (LFP) cathode, the resulting full cell exhibits superior cycling stability and rate performance. These results provide a facile approach to construct a lithiophilic current collector for practical Li metal anodes.
锂(Li)金属电池因其极高的理论容量而备受研究关注。然而,锂金属电池的商业化面临挑战,主要归因于锂枝晶的无控制生长,这引发了安全问题并降低了库仑效率。为了减轻锂枝晶的生长并实现致密的锂沉积,开发了应用于三维泡沫铜集流体的混合SiO-CuO亲锂膜,以调节界面性质,实现均匀且致密的锂沉积。SiO-CuO通过CuO的强亲锂性具有强大的锂捕获能力。此外,SiO-CuO通过SiO层中孔洞的限域效应实现均匀的离子扩散,在大容量下诱导出均匀且致密的锂电镀/剥离行为。此外,SiO层通过与阴离子和溶剂分子的选择性优先结合促进了初始高无机含量固体电解质界面(SEI)的形成。当SiO-CuO@Li阳极与LiFePO(LFP)阴极耦合时,所得的全电池表现出优异的循环稳定性和倍率性能。这些结果为构建用于实际锂金属阳极的亲锂集流体提供了一种简便方法。