Gao Jinlong, Chen Chaoji, Dong Qi, Dai Jiaqi, Yao Yonggang, Li Tangyuan, Rundlett Alexandra, Wang Ruiliu, Wang Chengwei, Hu Liangbing
Department of Materials Science and Engineering, University of Maryland, College Park, MD, 20742, USA.
Adv Mater. 2021 Mar;33(11):e2005305. doi: 10.1002/adma.202005305. Epub 2021 Feb 10.
Li metal holds great promise to be the ultimate anode choice owing to its high specific capacity and low redox potential. However, processing Li metal into thin-film anode with high electrochemical performance and good safety to match commercial cathodes remains challenging. Herein, a new method is reported to prepare ultrathin, flexible, and high-performance Li-Sn alloy anodes with various shapes on a number of substrates by directly stamping a molten metal solution. The printed anode is as thin as 15 µm, corresponding to an areal capacity of ≈3 mAh cm that matches most commercial cathode materials. The incorporation of Sn provides the nucleation center for Li, thereby mitigating Li dendrites as well as decreasing the overpotential during Li stripping/plating (e.g., <10 mV at 0.25 mA cm ). As a proof-of-concept, a flexible Li-ion battery using the ultrathin Li-Sn alloy anode and a commercial NMC cathode demonstrates good electrochemical performance and reliable cell operation even after repetitive deformation. The approach can be extended to other metal/alloy anodes such as Na, K, and Mg. This study opens a new door toward the future development of high-performance ultrathin alloy-based anodes for next-generation batteries.
锂金属因其高比容量和低氧化还原电位,极有希望成为最终的阳极选择。然而,将锂金属加工成具有高电化学性能且安全性良好、能与商用阴极相匹配的薄膜阳极,仍然具有挑战性。在此,报道了一种新方法,通过直接冲压熔融金属溶液,在多种基底上制备出具有各种形状的超薄、柔性且高性能的锂锡合金阳极。印刷阳极薄至15微米,对应面积容量约为3 mAh/cm²,与大多数商用阴极材料相匹配。锡的加入为锂提供了成核中心,从而减轻锂枝晶的生长,并降低锂剥离/电镀过程中的过电位(例如,在0.25 mA/cm²时<10 mV)。作为概念验证,使用超薄锂锡合金阳极和商用NMC阴极的柔性锂离子电池,即使在反复变形后仍表现出良好的电化学性能和可靠的电池运行。该方法可扩展到其他金属/合金阳极,如钠、钾和镁。这项研究为下一代电池高性能超薄合金基阳极的未来发展打开了一扇新的大门。