Qiu Xiaoguang, Yu Meng, Fan Guilan, Liu Jiuding, Wang Yingli, Zhao Kang, Ding Jiayi, Cheng Fangyi
Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education), Engineering Research Center of High-efficiency Energy Storage (Ministry of Education), Renewable Energy Conversion and Storage Center, College of Chemistry, Nankai University, Tianjin 300071, China.
ACS Appl Mater Interfaces. 2021 Feb 10;13(5):6367-6374. doi: 10.1021/acsami.0c22046. Epub 2021 Jan 26.
Metallic lithium is one of the most promising anode materials to build next generation electrochemical power sources such as Li-air, Li-sulfur, and solid-state lithium batteries. The implementation of rechargeable Li-based batteries is plagued by issues including dendrites, pulverization, and an unstable solid electrolyte interface (SEI). Herein, we report the use of nanostructured CuO grown on commercial copper foil (CuO@Cu) via chemical etching as a Li-reservoir substrate to stabilize SEI formation and Li stripping/plating. The lithiophilic interconnected CuO layer enhances electrolyte wettability. Besides, a mechanically stable LiO- and LiF-rich SEI is generated on CuO@Cu during initial discharge, which permits dense and uniform lithium deposition upon subsequent cycling. Compared with bare Cu, the CuO@Cu electrode exhibits superior performance in terms of Coulombic efficiency, discharge/charge overpotentials, and cyclability. By pairing with the Li-CuO@Cu anodes, full cells with LiFePO and LiNiMnCoO cathodes sustain 300 cycles with 98.8% capacity retention at 1 C and deliver a specific capacity of 80 mAh g at 10 C, respectively. This work would shed light on the design of advanced current collectors with SEI modulation to upgrade lithium anodes.
金属锂是构建下一代电化学电源(如锂空气电池、锂硫电池和固态锂电池)最具前景的负极材料之一。可充电锂电池的应用受到枝晶、粉化和不稳定的固体电解质界面(SEI)等问题的困扰。在此,我们报道了通过化学蚀刻在商业铜箔(CuO@Cu)上生长的纳米结构CuO作为锂储存基底的应用,以稳定SEI的形成和锂的剥离/电镀。亲锂的相互连接的CuO层提高了电解质的润湿性。此外,在初次放电过程中,在CuO@Cu上生成了机械稳定的富含LiO和LiF的SEI,这使得在随后的循环中锂能够致密且均匀地沉积。与裸铜相比,CuO@Cu电极在库仑效率、充放电过电位和循环稳定性方面表现出优异的性能。通过与Li-CuO@Cu负极配对,采用LiFePO和LiNiMnCoO正极的全电池在1 C下可维持300次循环,容量保持率为98.8%,在10 C下分别提供80 mAh g的比容量。这项工作将为通过SEI调制设计先进的集流体以升级锂负极提供思路。