Feng Guo, Ma Qianyi, Luo Dan, Yang Tingzhou, Nie Yihang, Zheng Zhuoyi, Yang Leixin, Li Shibin, Li Qingying, Jin MingLiang, Wang Xin, Chen Zhongwei
South China Academy of Advanced Optoelectronics, South China Normal University, 510006, Guangzhou, China.
Department of Chemical Engineering, University of Waterloo, N2L 3G1, Waterloo, Ontario, Canada.
Angew Chem Int Ed Engl. 2025 Jan 2;64(1):e202413306. doi: 10.1002/anie.202413306. Epub 2024 Oct 25.
Solid polymer electrolytes (SPEs) are promising for high-energy-density solid-state Li metal batteries due to their decent flexibility, safety, and interfacial stability. However, their development was seriously hindered by the interfacial instability and limited conductivity, leading to inferior electrochemical performance. Herein, we proposed to design ultra-thin solid-state electrolyte with long-range cooperative ion transport pathway to effectively increase the ionic conductivity and stability. The impregnation of PVDF-HFP inside pores of fluorinated covalent organic framework (CF-COF) can disrupt its symmetry, rendering rapid ion transportation and inhibited anion immigration. The functional groups of CF-COF can interact with PVDF-HFP to form fast Li transport channels, which enables the uniform and confined Li conduction within the electrolyte. The introduction of CF-COF also enhances the mechanical strength and flexibility of SPEs, as well as ensures homogeneous Li deposition and inhibited dendrite growth. Hence, a remarkably high conductivity of 1.21×10 S cm can be achieved. Finally, the ultra-thin SPEs with an extremely long cycle life exceed 9000 h can be obtained while the NCM523/Li pouch cell demonstrates a high capacity of 760 mAh and 96 % capacity retention after cycling, holding great promises to be utilized for practical solid-state Li metal batteries.
固态聚合物电解质(SPEs)因其良好的柔韧性、安全性和界面稳定性,在高能量密度固态锂金属电池领域具有广阔前景。然而,界面不稳定性和有限的电导率严重阻碍了它们的发展,导致电化学性能较差。在此,我们提出设计具有长程协同离子传输路径的超薄固态电解质,以有效提高离子电导率和稳定性。将聚偏氟乙烯-六氟丙烯(PVDF-HFP)浸渍在氟化共价有机框架(CF-COF)的孔内,可以破坏其对称性,实现快速离子传输并抑制阴离子迁移。CF-COF的官能团可以与PVDF-HFP相互作用,形成快速锂传输通道,从而使电解质内的锂传导均匀且受限。CF-COF的引入还增强了SPEs的机械强度和柔韧性,并确保锂均匀沉积且抑制枝晶生长。因此,可实现高达1.21×10⁻³ S cm⁻¹的电导率。最后,可获得循环寿命极长、超过9000 h的超薄SPEs,同时NCM523/Li软包电池在循环后表现出760 mAh的高容量和96%的容量保持率,在实际固态锂金属电池应用方面极具潜力。