Cao Shengling, He Xin, Nie Lanlan, Hu Jianwei, Chen Manlin, Han Yu, Wang Kangli, Jiang Kai, Zhou Min
State Key Laboratory of Advanced Electromagnetic Engineering and Technology, School of Electrical and Electronic Engineering, Huazhong University of Science and Technology, Wuhan, 430074, China.
State Key Laboratory of Materials Processing and Die & Mould Technology, School of Materials Science and Engineering, Huazhong University of Science and Technology, Wuhan, 430074, China.
Adv Sci (Weinh). 2022 Jul;9(21):e2201147. doi: 10.1002/advs.202201147. Epub 2022 May 26.
Lithium metal anodes have long been considered as "holy grail" in the field of energy storage batteries, but dendrite growth and large volume changes hinder their practical applications. Herein, a facile and eco-friendly CF plasma treatment is employed for the surface modification of Li anodes, and an artificial layer consisting of LiF and Li C is fabricated for the first time. Experimental results and theoretical calculations reveal that the high adsorption energy of LiF and low Li diffusion barriers in Li C induce uniform nucleation and planar growth of Li, guaranteeing a stable and dendrite-free Li structure during the repeated plating/stripping process of cycling. Symmetric cells using CF plasma-treated Li operate stably for more than 6500 h (at 2 mA cm and 1 mAh cm ) or 950 h (at 1 mA cm and 10 mAh cm ). When paired with a LiFePO cathode, full batteries deliver a high reversible capacity of 136 mAh g (at 1 C) with considerable cycling stability (97.2% capacity retention over 200 cycles) and rate performance (116 mAh g up to 5 C). This powerful application of plasma technology toward novel LiF-Li C artificial layers provide new routes for constructing environment-friendly and high-performance energy storage devices.
锂金属负极长期以来一直被视为储能电池领域的“圣杯”,但枝晶生长和大体积变化阻碍了它们的实际应用。在此,采用一种简便且环保的CF等离子体处理对锂负极进行表面改性,并首次制备了由LiF和LiC组成的人工层。实验结果和理论计算表明,LiF的高吸附能和LiC中较低的Li扩散势垒诱导了Li的均匀成核和平面生长,从而在循环的反复镀锂/脱锂过程中保证了稳定且无枝晶的Li结构。使用CF等离子体处理的Li的对称电池在2 mA cm和1 mAh cm下稳定运行超过6500小时,或在1 mA cm和10 mAh cm下稳定运行950小时。当与LiFePO4正极配对时,全电池在1 C下具有136 mAh g的高可逆容量,具有相当的循环稳定性(200次循环后容量保持率为97.2%)和倍率性能(在5 C下可达116 mAh g)。等离子体技术在新型LiF-LiC人工层上的这种强大应用为构建环保型高性能储能装置提供了新途径。