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Published on: February 5, 2019
Direct Molecular Evidence for Desolvation-Controlled Lithium-Ion Insertion at Graphite Electrodes in Highly
Saki Sawayama1, Masaru Matsugami2, Kenta Fujii1
1Graduate School of Sciences and Technology for Innovation, Yamaguchi University, 1-16-2 Tokiwadai, Ube, Yamaguchi 755-8611, Japan.
Abstract:
Understanding the rate-determining step of lithium (Li)-ion insertion at graphite electrodes is essential for designing fast-charging Li-ion battery electrolyte systems. In this study, we quantitatively investigate how Li-ion solvation affects electrode reaction kinetics in highly concentrated electrolytes. By measuring the activation energy (Ea) for the Li-ion insertion reaction in a series of 3.0 M LiFSA/solvent solutions, we found that Ea exhibited a strong linear correlation with the calculated binding energy (ΔEbind) of Li+-solvent interactions. This result provides direct evidence that, in highly concentrated electrolytes where Li+ is coordinated by both solvent molecules and anions to form ion-ordered structures, the desolvation of solvent molecules, rather than anion decoordination, controls the reaction kinetics. All-atom molecular dynamics (MD) simulations further revealed that, upon electrode polarization, FSA- anions are preferentially excluded from the interfacial electrolyte structure closest to the electrode surface due to electrostatic repulsion, thereby inducing structural relaxation of the Li+ coordination shell. This yields a locally enriched environment of Li+ and solvent molecules, in which the disruption of Li+-solvent interactions (i.e., desolvation), rather than Li+-FSA- interactions, controls the reaction rate and thus determines the activation energy.
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