Peng Xinru, Li Jiayao, Dang Jingshuang, Yin Shiwei, Zheng Hengyan, Wang Changwei, Mo Yirong
Key Laboratory for Macromolecular Science of Shaanxi Province, School of Chemistry & Chemical Engineering, Shaanxi Normal University, Xi'an 710119, China.
Department of Nanoscience, Joint School of Nanoscience and Nanoengineering, University of North Carolina at Greensboro, Greensboro, North Carolina 27401, United States.
Inorg Chem. 2024 Mar 11;63(10):4716-4724. doi: 10.1021/acs.inorgchem.3c04537. Epub 2024 Feb 28.
Structures are of fundamental importance for diverse studies of lithium polysulfide clusters, which govern the performance of lithium-sulfur batteries. The ring-like geometries were regarded as the most stable structures, but their physical origin remains elusive. In this work, we systematically explored the minimal structures of LiS ( = 4-8) clusters to uncover the driving force for their conformational preferences. All low-lying isomers were generated by performing global searches using the ABCluster program, and the ionic nature of the Li···S interactions was evidenced with the energy decomposition analysis based on the block-localized wave function (BLW-ED) approach and further confirmed with the quantum theory of atoms in molecule (QTAIM). By analysis of the contributions of various energy components to the relative stability with the references of the lowest-lying isomers, the controlling factor for isomer preferences was found to be the polarization interaction. Notably, although the electrostatic interaction dominates the binding energies, it contributes favorably to the relative stabilities of most isomers. The Li···Li distance is identified as the key geometrical parameter that correlates with the strength of the polarization of the S fragment imposed by the Li cations. Further BLW-ED analyses reveal that the cooperativity of the Li cations primarily determines the relative strength of the polarization.
结构对于多硫化锂簇的各种研究至关重要,多硫化锂簇决定着锂硫电池的性能。环状几何结构被认为是最稳定的结构,但其物理起源仍然难以捉摸。在这项工作中,我们系统地探索了LiS(= 4 - 8)簇的最小结构,以揭示其构象偏好的驱动力。通过使用ABCluster程序进行全局搜索生成了所有低能异构体,并基于块定域波函数(BLW - ED)方法的能量分解分析证明了Li···S相互作用的离子性质,并用分子中的原子量子理论(QTAIM)进一步证实。通过以最低能异构体为参考分析各种能量成分对相对稳定性的贡献,发现异构体偏好的控制因素是极化相互作用。值得注意的是,尽管静电相互作用主导着结合能,但它对大多数异构体的相对稳定性有有利贡献。Li···Li距离被确定为与Li阳离子对S片段极化强度相关的关键几何参数。进一步的BLW - ED分析表明,Li阳离子的协同作用主要决定了极化的相对强度。