法拉第效率
材料科学
电解质
锂(药物)
电化学
阴极
化学工程
电导率
热传导
离子液体
离子键合
无机化学
离子
离子电导率
电阻率和电导率
晶界
共价键
共价有机骨架
纳米技术
分子动力学
电化学窗口
离子运输机
电极
化学物理
导电体
作者
Rak Hyeon Choi,Akshay Gurumoorthi,Sangwon Bae,Chang Yun Son,Hye Ryung Byon
标识
DOI:10.1002/aenm.202504143
摘要
Abstract Covalent organic frameworks (COFs) are promising solid‐state electrolytes (SSEs) for lithium (Li)‐metal batteries due to their tunable structures, ordered nanochannels, and suppressed segmental motion, which support Li⁺ ion transport at ambient temperatures. However, pellet‐type COF‐based SSEs have exhibited low ionic conductivity, attributed to suboptimal ion transport pathways, limited crystallinity, and extensive grain boundary formation. Here, a 20 µm‐thick disulfonate‐functionalized COF (COF ds ) film is presented that achieves an ionic conductivity of 1.0 × 10 ‒4 S cm ‒1 at 25 °C. The integration of immobile disulfonate anions and carbonyl groups enables inter‐subchannel Li⁺ hopping with minimal spatial separation. Molecular dynamics (MD) simulations under applied fields confirm that the molecular design facilitates optimized Li⁺ conduction pathways. Solution‐phase synthesis enabled COF ds films with high crystallinity, uniform morphology, and smooth surfaces, which enhanced electrochemical performance. As a result, symmetric Li cells with the COF ds film showed stable cycling for over 1300 h at 25 °C, while full cells with LiFePO 4 cathodes retained ≈95% capacity and 99.999% Coulombic efficiency over 300 cycles at 0.2 C. This study highlights the importance of integrating molecular and structural engineering for developing COF‐based SSEs in Li‐metal batteries.
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