Synergistic orbital coupling and descriptor-driven engineering of dual-atom catalysts on N-doped graphene for high-performance LiS batteries: A first-principle perspective

多硫化物 石墨烯 催化作用 密度泛函理论 材料科学 纳米技术 化学物理 异核分子 原子轨道 离解(化学) Atom(片上系统) 氧化物 人口 化学 纳米电子学 基质(水族馆) 储能 同核分子 分子轨道 计算化学 化学工程 纳米颗粒
作者
Ghulam Meeladi,Haiyan Zhu,Chou Wu,Shaobo Jia,Shanlin Chen,Jianxiao Shang,X. Li,Mushahid Hussain Shah,Muhammad Shahid Iqbal,Yawei Li
出处
期刊:Journal of energy storage [Elsevier BV]
卷期号:151: 120051-120051 被引量:3
标识
DOI:10.1016/j.est.2025.120051
摘要

Lithium‑sulfur (Li S) batteries are regarded as promising next-generation energy storage systems due to their high theoretical specific energy and economic feasibility. Nevertheless, critical challenges such as the lithium polysulfide shuttle effect and sluggish redox kinetics continue to impede their practical implementation. To overcome these limitations, designing highly active and stable catalysts is crucial. Graphene with abundant pyridinic nitrogen sites and a two-dimensional porous framework provides an excellent substrate for supporting dual-atom catalysts (DACs). Herein, we designed 15 nitrogen-doped graphene-supported DACs, denoted as M 1 M 2 @N 6 -G (M 1 , M 2 = V, Fe, Cu, Zr, Nb, Pt). The potential of these materials as sulfur hosts was systematically investigated through density functional theory (DFT) calculations. The findings reveal that the coupling of distinct molecular orbitals between metal atoms in heteronuclear DACs effectively tunes the spin states, thereby enhancing polysulfide anchoring and catalytic activity beyond that of homonuclear and single atom counterparts. The results indicate that CuFe@N 6 -G demonstrates superior catalytic performance, arising from its low Gibbs free energy (0.65 eV) in the rate-determining step of the discharge process and its reduced Li 2 S decomposition energy barrier (0.97 eV) during charging. Specifically, the integrated crystal orbital Hamilton population (ICOHP) serves as an effective electronic descriptor, particularly in relation to the dissociation energy barrier of Li 2 S during the charging process. This theoretical study offers actionable insights for developing advanced energy storage systems.
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