Das Priya, Sarkar Pranab
Department of Chemistry, Visva-Bharati University, Santiniketan-731235, India.
Phys Chem Chem Phys. 2023 Nov 15;25(44):30536-30542. doi: 10.1039/d3cp03986b.
Lithium-sulfur (Li-S) batteries, as next generation energy storage systems, have gained considerable attention due to their high energy density, low cost, and environmental friendliness. However, the practical applications of Li-S batteries are presently hindered by several issues, such as the low conductivity of sulfur species, the shuttle effect of polysulfides, and poor conversion efficiency in discharging/charging processes. In this study, using density functional theory (DFT)-based computations, we propose a two dimensional (2D) covalent organic framework (COF) with triquinoxalinylene (TQ) and benzoquinone (BQ) units in its skeleton, namely, TQBQCOF, as a promising sulfur host material for high-performance Li-S batteries. We have found that the TQBQCOF is a semiconductor with a band gap of 1.16 eV. After the adsorption of LiPSs the TQBQCOF becomes metallic in nature, which ensures its excellent electronic conductivity. The moderate adsorption energies of the TQBQCOF to the soluble LiPSs can effectively suppress the shuttle effect of polysulfides. Notably, the TQBQCOF also shows high catalytic activity for the sulfur reduction reactions (SRR) in the discharge process and LiS decomposition in the charging process of Li-S batteries. The Gibbs free energy barrier for the SRR is 0.22 eV, while the decomposition barrier of a LiS molecule on the TQBQCOF is only 0.04 eV, ensuring the rapid charging and discharging processes of Li-S batteries.
锂硫(Li-S)电池作为下一代储能系统,因其高能量密度、低成本和环境友好性而备受关注。然而,Li-S电池的实际应用目前受到几个问题的阻碍,如硫物种的低导电性、多硫化物的穿梭效应以及充放电过程中较差的转换效率。在本研究中,我们基于密度泛函理论(DFT)计算,提出了一种二维(2D)共价有机框架(COF),其骨架中含有三喹喔啉撑(TQ)和苯醌(BQ)单元,即TQBQCOF,作为高性能Li-S电池的一种有前景的硫主体材料。我们发现TQBQCOF是一种带隙为1.16 eV的半导体。在吸附锂多硫化物(LiPSs)后,TQBQCOF本质上变为金属,这确保了其优异的电子导电性。TQBQCOF对可溶性LiPSs的适度吸附能可有效抑制多硫化物的穿梭效应。值得注意的是,TQBQCOF在Li-S电池的放电过程中对硫还原反应(SRR)和充电过程中的LiS分解也表现出高催化活性。SRR的吉布斯自由能垒为0.22 eV,而LiS分子在TQBQCOF上的分解能垒仅为0.04 eV,确保了Li-S电池的快速充放电过程。