Lu Bing-Yi, Wang Zhi-Qing, Cui Fu-Zhi, Li Jiang-Yu, Han Xiang-Hao, Qi Qiao-Yan, Ma De-Li, Jiang Guo-Fang, Zeng Xian-Xiang, Zhao Xin
State Key Lab of Chemo/Biosensing and Chemometrics, College of Chemistry and Chemical Engineering, Hunan University, Changsha 410082, China.
Key Laboratory of Synthetic and Self-Assembly Chemistry for Organic Functional Molecules, Center for Excellence in Molecular Synthesis, Shanghai Institute of Organic Chemistry, Chinese Academy of Sciences, 345 Lingling Road, Shanghai 200032, China.
ACS Appl Mater Interfaces. 2020 Aug 5;12(31):34990-34998. doi: 10.1021/acsami.0c08984. Epub 2020 Jul 27.
Lithium-sulfur (Li-S) batteries have recently become a research hotspot because of their tempting theoretical capacity and energy density. Nevertheless, the notorious shuttle of polysulfides hinders the advancement of Li-S batteries. Herein, a two-dimensional covalent organic framework (COF) with extended π-conjugated units has been designed, synthesized, and used as sulfur recipients with 88.4 wt % in loading. The COF offers an elaborate platform for sufficient Li-S redox reactions with almost theoretical capacity release (1617 mA h g at 0.1 C), satisfactory rate capability, and intensively traps polysulfides for a decent Coulombic efficiency (ca. 98.0%) and extremely low capacity decay (0.077% per cycle after 528 cycles at 0.5 C). The structural factors of the COF on the high-performance batteries are revealed by density functional theory calculations to be the high degrees of conjugation and proper interlayer space. This work not only demonstrates the great potential of COFs as highly efficient sulfur recipients but also provides a viable guidance for further design of COF materials to tackle shuttling issues toward active materials in electrochemical energy storage.
锂硫(Li-S)电池因其诱人的理论容量和能量密度,近来成为研究热点。然而,臭名昭著的多硫化物穿梭效应阻碍了锂硫电池的发展。在此,一种具有扩展π共轭单元的二维共价有机框架(COF)被设计、合成,并用作硫载体,负载量达88.4 wt%。该COF为充分的锂硫氧化还原反应提供了一个精细的平台,几乎能实现理论容量释放(0.1 C时为1617 mA h g),具备令人满意的倍率性能,能强烈捕获多硫化物,实现良好的库仑效率(约98.0%)以及极低的容量衰减(0.5 C下528次循环后每循环0.077%)。密度泛函理论计算揭示了该COF在高性能电池方面的结构因素,即高度共轭和合适的层间距。这项工作不仅证明了COF作为高效硫载体的巨大潜力,还为进一步设计COF材料以解决电化学储能中活性材料的穿梭问题提供了可行的指导。