Advanced Research Institute of Multidisciplinary Science, Beijing Institute of Technology, Beijing, 100081, China.
School of Materials Science and Engineering, Beijing Institute of Technology, Beijing, 100081, China.
Adv Mater. 2018 Jun;30(25):e1707629. doi: 10.1002/adma.201707629. Epub 2018 Apr 20.
Lithium metal batteries (such as lithium-sulfur, lithium-air, solid state batteries with lithium metal anode) are highly considered as promising candidates for next-generation energy storage systems. However, the unstable interfaces between lithium anode and electrolyte definitely induce the undesired and uncontrollable growth of lithium dendrites, which results in the short-circuit and thermal runaway of the rechargeable batteries. Herein, a dual-layered film is built on a Li metal anode by the immersion of lithium plates into the fluoroethylene carbonate solvent. The ionic conductive film exhibits a compact dual-layered feature with organic components (ROCO Li and ROLi) on the top and abundant inorganic components (Li CO and LiF) in the bottom. The dual-layered interface can protect the Li metal anode from the corrosion of electrolytes and regulate the uniform deposition of Li to achieve a dendrite-free Li metal anode. This work demonstrates the concept of rational construction of dual-layered structured interfaces for safe rechargeable batteries through facile surface modification of Li metal anodes. This not only is critically helpful to comprehensively understand the functional mechanism of fluoroethylene carbonate but also affords a facile and efficient method to protect Li metal anodes.
锂金属电池(如锂硫、锂空、具有锂金属阳极的固态电池)被高度认为是下一代储能系统的有前途的候选者。然而,锂阳极和电解质之间不稳定的界面肯定会导致锂枝晶的不可控生长,从而导致可充电电池的短路和热失控。在此,通过将锂片浸入氟代碳酸乙烯酯溶剂中,在锂金属阳极上构建了双层膜。离子导电膜具有有机成分(ROCOLi 和 ROLi)在上部和丰富的无机成分(LiCO 和 LiF)在底部的紧密双层特征。双层界面可以保护锂金属阳极免受电解质的腐蚀,并调节 Li 的均匀沉积,以实现无枝晶的锂金属阳极。这项工作通过对锂金属阳极进行简单的表面改性,展示了通过合理构建双层结构界面来实现安全可充电电池的概念。这不仅对全面理解氟代碳酸乙烯酯的功能机制至关重要,而且还提供了一种简单有效的保护锂金属阳极的方法。