Ternary Solid Polymer Electrolytes at the Electrochemical Interface: A Computational Study
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ISSN: 0024-9297
E-ISSN: 1520-5835
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American Chemical Society
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Polymer-based solid-like gel electrolytes have emerged as a promising alternative to improve battery performance. However, there is a scarcity of studies on the behavior of these media at the electrochemical interface. In this work, we report classical MD simulations of ternary polymer electrolytes composed of poly(ethylene oxide), a lithium salt [lithium bis(trifluoromethanesulfonyl)imide], and different ionic liquids [1-butyl-1-methylpyrrolidinium bis(trifluoromethanesulfonyl)imide and 1-ethyl-3-methylimidazolium bis(trifluoromethanesulfonyl)imide] confined between two charged and uncharged graphene-like surfaces. The molecular solvation of Li+ ions and their diffusion as well as the polymer conformational picture were characterized in terms of the radial distribution functions, coordination numbers, number density profiles, orientations, displacement variance, polymer radius of gyration, and polymer end-to-end distance. Our results show that the layering behavior of the ternary electrolyte in the interfacial region leads to a decrease of Li+ mobility in the direction perpendicular to the electrodes and high energy barriers that hinder lithium cations from coming into direct contact with the graphene-like surface. The nature of the ionic liquid and its concentration were found to influence the structural and dynamic properties at the electrode/electrolyte interface, the electrolyte with low amounts of the pyrrolidinium-based ionic liquid being that with the best performance since it favors the migration of Li+ cations toward the negative electrode when compared to the imidazolium-based one.
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Alejandro Rivera-Pousa, José Manuel Otero-Mato, Hadrian Montes-Campos, Trinidad Méndez-Morales, Diddo Diddens, Andreas Heuer, and Luis Miguel Varela. Macromolecules 2024 57 (9), 3921-3936 DOI: 10.1021/acs.macromol.3c02669
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The financial support of the Spanish Ministry of Science and Innovation (PID2021-126148NA-I00 funded by MCIN/AEI/10.13039/501100011033/FEDER, UE) is gratefully acknowledged. Moreover, this work was funded by the Xunta de Galicia (GRC ED431C 2020/10). A.R.-P. thanks the Spanish Ministry of Education for his FPU18/01597 grant. T.M.-M. acknowledges her contract funded by the pilot program of the USC for the recruitment of distinguished research personnel─call 2021 under the agreement between the USC and the Santander Bank for 2021–2024. H.M.-C. thanks the USC for his “Convocatoria de Recualificación do Sistema Universitario Español-Margarita Salas” postdoctoral grant under the “Plan de Recuperación Transformación” program funded by the Spanish Ministry of Universities with European Union’s NextGenerationEU funds. This work was supported by the Fundacão para a Ciência e Tecnologia (FCT) funded by national funds through the FCT/MCTES (PIDDAC) to CIQUP, Faculty of Science, University of Porto (project UIDB/00081/2020), IMS-Institute of Molecular Sciences (LA/P/0056/2020). A.H. and D.D. thank the German Federal Ministry of Education and Research (BMBF) for financial support through the projects FestBatt (grant number 03XP0174B) and FestBatt2 (grant number 03XP0435E).
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Atribución 4.0 Internacional
Copyright © 2024 The Authors. Published by American Chemical Society. This publication is licensed under CC-BY 4.0
Copyright © 2024 The Authors. Published by American Chemical Society. This publication is licensed under CC-BY 4.0








