溶剂化
稀释剂
材料科学
分子间力
石墨
相间
化学物理
溶剂化壳
溶剂
光谱学
电解质
分子动力学
化学工程
扩散
磷酸三甲酯
核磁共振波谱
物理化学
分析化学(期刊)
核过剩效应
纳米技术
锂(药物)
吸附
共振(粒子物理)
作者
Soumita Chakraborty,Suraj Halder,Ishita Das,Pritha Mondal,Rachana Raavi,Navneet Singh,Sk Mujaffar Hossain,Newton Roy,Nikhil Kumar,Soumen Sensarma,Purnendu Kumar Roy Chowdhury,Bidisa Das,Hemant K. Kashyap,Shweta Jain,Abhik Banerjee
标识
DOI:10.1002/adfm.202531770
摘要
ABSTRACT Localized high concentration electrolytes (LHCEs) have garnered significant attention in the past decade due to their unique cation‐solvate microstructure, which effectively stabilizes the graphite anodes. However, a long battery (anode) cycle life demands simultaneous optimization of Li + solvation structure, Li + desolvation kinetics, composition of the crucial solid‐electrolyte interphase (SEI), interfacial stability, and Li + diffusion across SEI, factors which are challenging to balance. Though the diluents play a key role in governing LHCE solvation environments, the influence of diluent fluorination and diluent‐solvent intermolecular interactions on graphite SEI formation remains underexplored. This work demonstrates that controlled fluorination of the diluent, rather than heavy fluorination, results into effective Li + (de)‐intercalation at graphite anodes. The optimally fluorinated diluent, difluoromethoxybenzene (DFMB), induces the most favorable diluent‐solvent interactions with triethyl phosphate (TEP) as compared to methoxybenzene (MB) and trifluoromethoxybenzene (TFMB). Moreover, the identification and quantification of the diluent‐solvent intermolecular interactions by the Diffusion‐Ordered spectroscopy (DOSY) and Nuclear Overhauser Effect Spectroscopy (NOESY) nuclear magnetic resonance (NMR) techniques establishes 1 H‐ 1 H interactions between diluent and solvent to be the key factor driving the solvation dynamics of LHCE. Such a molecular tuning of diluent‐solvent interactions produces a cascading impact on solvation microstructure, Li + desolvation kinetics, interphase characteristics, and interfacial stability of graphite anodes.
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