Hu Anjun, Chen Wei, Li Fei, He Miao, Chen Dongjiang, Li Yaoyao, Zhu Jun, Yan Yichao, Long Jianping, Hu Yin, Lei Tianyu, Li Baihai, Wang Xianfu, Xiong Jie
State Key Laboratory of Electronic Thin Film and Integrated Devices, School of Physics, University of Electronic Science and Technology of China, Chengdu, 610054, China.
College of Materials and Chemistry & Chemical Engineering, Chengdu University of Technology, Chengdu, 610059, China.
Adv Mater. 2023 Dec;35(51):e2304762. doi: 10.1002/adma.202304762. Epub 2023 Nov 16.
The safe operation of rechargeable batteries is crucial because of numerous instances of fire and explosion mishaps. However, battery chemistry involving metallic lithium (Li) as the anode is prone to thermal runaway in flammable organic electrolytes under abusive conditions. Herein, an in situ encapsulation strategy is proposed to construct nonflammable quasi-solid electrolytes through the radical polymerization of a hexafluorobutyl acrylate (HFBA) monomer and a pentaerythritol tetraacrylate (PETEA) crosslinker. The quasi-solid system eliminates the inherent flammability of ether electrolytes with zero self-extinguishing time owing to the gas-phase radical capturing ability of HFBA. Additionally, the graphitized carbon layer generated during the decomposition of PETEA at high temperatures obstructs the heat and oxygen required for combustion. When coupled with Au-modified reduced graphene oxide anodic current collectors and lithium sulfide cathodes, the assembled anode-free Li-metal cell based on the quasi-solid electrolyte exhibits no signs of cell expansion or gas generation during cycling, and thermal runaway is eliminated under multiple mechanical, electrical, and thermal abuse scenarios and even rigorous strikes. This nonflammable quasi-solid configuration with gas- and condensed-phase flame-retardant mechanisms can drive a technological leap in anode-free Li-metal pouch cells and secure the practical applications necessary to power this society in a safe manner.
由于存在众多起火和爆炸事故,可充电电池的安全运行至关重要。然而,以金属锂(Li)为阳极的电池化学体系在恶劣条件下的易燃有机电解质中容易发生热失控。在此,我们提出一种原位封装策略,通过丙烯酸六氟丁酯(HFBA)单体和季戊四醇四丙烯酸酯(PETEA)交联剂的自由基聚合来构建不可燃的准固态电解质。由于HFBA的气相自由基捕获能力,该准固态体系消除了醚电解质固有的易燃性,自熄时间为零。此外,PETEA在高温下分解过程中生成的石墨化碳层阻碍了燃烧所需的热量和氧气。当与金修饰的还原氧化石墨烯阳极集流体和硫化锂阴极耦合时,基于准固态电解质组装的无阳极锂金属电池在循环过程中没有电池膨胀或产气的迹象,并且在多种机械、电气和热滥用情况下甚至在剧烈撞击下都消除了热失控。这种具有气相和凝聚相阻燃机制的不可燃准固态结构能够推动无阳极锂金属软包电池的技术飞跃,并确保以安全方式为社会供电所需的实际应用。