Hu Xin, Ma Yitian, Qian Ji, Qu Wenjie, Li Yu, Luo Rui, Wang Huirong, Zhou Anbin, Chen Yi, Shi Keqing, Li Li, Wu Feng, Chen Renjie
Beijing Key Laboratory of Environmental Science and Engineering, School of Material Science and Engineering, Beijing Institute of Technology, Beijing, 100081, P. R. China.
School of Materials, Xi'an University of Science and Technology, Xi'an, 710054, China.
Adv Mater. 2024 Jan;36(4):e2303710. doi: 10.1002/adma.202303710. Epub 2023 Dec 3.
Lithium (Li) metal is considered as one of the most promising candidates of anode material for high-specific-energy batteries, while irreversible chemical reactions always occur on the Li surface to continuously consume active Li, electrolyte. Solid electrolyte interphase (SEI) layer has been regarded as the key component in protecting Li metal anode. Herein, a controllable dual-layered SEI for Li metal anode in a scalable, low-loss manner is constructed. The SEI is self-induced by the predeposited LiAlO (LAO) layer during the initial cycles, in which the outer organic layer is produced due to the electrons tunneling through LAO, resulting in the reduction of electrolyte. The robust inner LAO layer can promote uniform Li deposition owing to its favorable mechanical strength and ionic conductivity, and the outer organic layer can further improve the stability of SEI. Benefiting from the remarkable effects of this dual-layered SEI, enhanced electrochemical performance of the LAO-Li anode is achieved. Additionally, a large-size LAO-Li sample can be easily obtained, and the preparation of the modified Li metal anode shows huge potential for large-scale production. This work highlights the tremendous potential of this self-induced dual-layered SEI for the commercialization of Li metal anode.
锂(Li)金属被认为是高比能电池负极材料最有前景的候选者之一,然而锂表面总是会发生不可逆化学反应,持续消耗活性锂和电解质。固体电解质界面(SEI)层被视为保护锂金属负极的关键组成部分。在此,以可扩展、低损耗的方式构建了一种用于锂金属负极的可控双层SEI。该SEI在初始循环期间由预沉积的LiAlO(LAO)层自诱导形成,其中外层有机层是由于电子隧穿LAO导致电解质还原而产生的。坚固的内层LAO层因其良好的机械强度和离子导电性可促进锂的均匀沉积,外层有机层可进一步提高SEI的稳定性。受益于这种双层SEI的显著效果,LAO-Li负极的电化学性能得到增强。此外,可以轻松获得大尺寸的LAO-Li样品,并且改性锂金属负极的制备在大规模生产方面显示出巨大潜力。这项工作突出了这种自诱导双层SEI在锂金属负极商业化方面的巨大潜力。