Jin Xin, Cai Ziqiang, Zhang Xinrui, Yu Jianming, He Qiya, Lu Zhenda, Dahbi Mouad, Alami Jones, Lu Jun, Amine Khalil, Zhang Huigang
National Laboratory of Solid State Microstructures, Collaborative Innovation Center of Advanced Microstructures, and College of Engineering and Applied Sciences, Nanjing University, Jiangsu, 210093, China.
State Key Laboratory of Multiphase Complex Systems, Institute of Process Engineering, Chinese Academy of Sciences, Beijing, 100190, China.
Adv Mater. 2022 Apr;34(17):e2200181. doi: 10.1002/adma.202200181. Epub 2022 Mar 20.
Integrating solid-state electrolyte (SSE) into Li-metal anodes has demonstrated great promise to unleash the high energy density of rechargeable Li-metal batteries. However, fabricating a highly cyclable SSE/Li-metal anode remains a major challenge because the densification of the SSE is usually incompatible with the reactive Li metal. Here, a liquid-metal-derived hybrid solid electrolyte (HSE) is proposed, and a facile transfer technology to construct an artificial HSE on the Li metal is reported. By tuning the wettability of the transfer substrates, electron- and ion-conductive liquid metal is sandwiched between electron-insulating and ion-conductive LiF and oxides to form the HSE. The transfer technology renders the HSE continuous, dense, and uniform. The HSE, having high ion transport, electron shut-off, and mechanical strength, makes the composite anode deliver excellent cyclability for over 4000 h at 0.5 mA cm and 1 mAh cm in a symmetrical cell. When pairing with LiFePO and sulfur cathodes, the HSE-coated Li metal dramatically enhances the performance of full cells. Therefore, this work demonstrates that tuning the interfacial wetting properties provides an alternate approach to build a robust solid electrolyte, which enables highly efficient Li-metal anodes.
将固态电解质(SSE)集成到锂金属负极中已展现出释放可充电锂金属电池高能量密度的巨大潜力。然而,制造高度可循环的SSE/锂金属负极仍然是一项重大挑战,因为SSE的致密化通常与活性锂金属不相容。在此,提出了一种液态金属衍生的混合固体电解质(HSE),并报道了一种在锂金属上构建人工HSE的简便转移技术。通过调节转移基板的润湿性,电子和离子传导性液态金属夹在电子绝缘和离子传导性的LiF与氧化物之间形成HSE。该转移技术使HSE连续、致密且均匀。具有高离子传输、电子阻断和机械强度的HSE使复合负极在对称电池中于0.5 mA cm和1 mAh cm下实现超过4000小时的优异循环性能。当与LiFePO和硫正极配对时,涂覆有HSE的锂金属显著提高了全电池的性能。因此,这项工作表明调节界面润湿性提供了一种构建坚固固体电解质的替代方法,从而实现高效的锂金属负极。