Single particle dynamics at the free surface of imidazolium-based ionic liquids
Tóth Ugyonka, Helga and Hantal, György and Szilágyi, István and Idrissi, Abdenacer and Jorge, Miguel and Jedlovszky, Pál (2024) Single particle dynamics at the free surface of imidazolium-based ionic liquids. Journal of Physical Chemistry B, 676. ISSN 1520-6106 (In Press) (https://doi.org/10.1021/acs.jpcb.4c07311)
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Abstract
In this work, we carry out a systematic computer simulation investigation of the single particle dynamics at the free surface of imidazolium-based room temperature ionic liquids (RTILs) by applying intrinsic surface analysis. Besides assessing the effect of the potential model and temperature, we focus in particular on the effect of changing the anion type, and, hence, their shape and size. Further, we also address the role of the length of the cation alkyl chains, known to protrude into the vapor phase, on the surface dynamics of the ions. We observe that the surface dynamics of ionic liquids, being dominated by strong electrostatic interactions, are about two orders of magnitude slower than that for common molecular liquids. Furthermore, the free energy driving force for exposing apolar chains to the vapor phase “pins” the cations at the surface layer for much longer than anions, allowing them to perform noticeable lateral diffusion at the liquid surface during their stay there. On the other hand, anions, accumulated in the second layer beneath the liquid surface, stay considerably longer here than in the surface layer. The ratio of the mean surface residence time of the cations and anions depends on the relative size of the two ions: larger size asymmetry typically corresponds to larger values of this ratio. We also find, in a clear contrast with the bulk liquid phase behavior, that anions typically diffuse faster at the liquid surface than cations. Finally, our results show that the surface dynamics of the ions is largely determined by the apolar layer of the cation alkyl chains at the liquid surface, as in the absence of such a layer, cations and anions are found to behave similarly with respect to their single particle dynamics.
ORCID iDs
Tóth Ugyonka, Helga, Hantal, György, Szilágyi, István, Idrissi, Abdenacer, Jorge, Miguel ORCID: https://orcid.org/0000-0003-3009-4725 and Jedlovszky, Pál;-
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Item type: Article ID code: 91538 Dates: DateEvent10 December 2024Published10 December 2024Accepted25 October 2024SubmittedSubjects: Technology > Chemical engineering Department: Faculty of Engineering > Chemical and Process Engineering
Strategic Research Themes > Advanced Manufacturing and Materials
Strategic Research Themes > Energy
Strategic Research Themes > Measurement Science and Enabling TechnologiesDepositing user: Pure Administrator Date deposited: 12 Dec 2024 15:43 Last modified: 16 Dec 2024 11:32 URI: https://strathprints.strath.ac.uk/id/eprint/91538