Liu Shujie, Zhao Yun, Li Xiaohan, Yu Jianyong, Yan Jianhua, Ding Bin
Key Laboratory of Textile Science & Technology, College of Textile, Donghua University, Shanghai, 201620, China.
Innovation Center for Textile Science and Technology, Donghua University, Shanghai, 200051, China.
Adv Mater. 2021 Mar;33(12):e2008084. doi: 10.1002/adma.202008084. Epub 2021 Feb 19.
Improving the long-term cycling stability of solid-state lithium (Li)-metal batteries (SSBs) is a severe challenge because of the notorious solid-solid interfacial contact loss originating from the repeated expansion and contraction of the Li anodes. Here, it is reported that high-performance SSBs are enabled by constructing brick-and-mortar electrolytes that can dynamically adapt to the interface changes during cycling. An electrolyte film with a high mechanical strain (250%) is fabricated by filling viscoelastic (600% strain) and piezoelectric block-copolymer electrolytes (mortar) into a mixed conductor Li La TiO nanofiber film (brick). During Li-plating, the electrolytes can homogenize the interfacial electric field and generate piezoelectricity to promote uniform Li-deposition, while the mortar can adhere to the Li-anode without interfacial disintegration in the reversed Li-stripping. As a result, the electrolytes show excellent compatibility with the electrodes, leading to a long electrochemical cyclability at room temperature. The symmetrical Li//Li cells run stably for 1880 h without forming dendrites, and the LiFePO /Li full batteries deliver high coulombic efficiency (>99.5%) and capacity retention (>85%) over 550 cycles. More practically, the pouch cells exhibit excellent flexibility and safety for potential practical applications.
由于锂阳极反复膨胀和收缩导致的固-固界面接触损失问题臭名昭著,因此提高固态锂金属电池(SSB)的长期循环稳定性是一项严峻挑战。在此,据报道,通过构建能在循环过程中动态适应界面变化的“砖-灰浆”电解质,可实现高性能的固态锂金属电池。通过将粘弹性(应变600%)和压电嵌段共聚物电解质(灰浆)填充到混合导体锂镧钛氧化物纳米纤维膜(砖)中,制备出了具有高机械应变(250%)的电解质膜。在锂电镀过程中,电解质可使界面电场均匀化并产生压电效应以促进锂的均匀沉积,而在反向锂剥离过程中,灰浆可粘附于锂阳极而不会发生界面解体。结果,该电解质与电极表现出优异的兼容性,从而在室温下实现了长循环寿命。对称锂//锂电池稳定运行1880小时而不形成枝晶,磷酸铁锂/锂全电池在550次循环中具有高库仑效率(>99.5%)和容量保持率(>85%)。更具实用性的是,软包电池在潜在实际应用中表现出优异的柔韧性和安全性。