Please use this identifier to cite or link to this item: 10.1039/d2sc01696f
Title: Unravelling free volume in branched-cation ionic liquids based on silicon
Authors: Baķis, Eduards
Goloviznina, Kateryna
Vaz, Inês C.M.
Sloboda, Diana
Hazens, Daniels
Valkovska, Valda
Klimenkovs, Igors
Padua, Agilio
Costa Gomes, Margarida
Keywords: 1.4 Chemical sciences;1.1. Scientific article indexed in Web of Science and/or Scopus database;General Chemistry
Issue Date: 5-Jul-2022
Citation: Baķis , E , Goloviznina , K , Vaz , I C M , Sloboda , D , Hazens , D , Valkovska , V , Klimenkovs , I , Padua , A & Costa Gomes , M 2022 , ' Unravelling free volume in branched-cation ionic liquids based on silicon ' , Chemical Science , vol. 13 , no. 31 , pp. 9062-9073 . https://doi.org/10.1039/d2sc01696f
Abstract: The branching of ionic liquid cation sidechains utilizing silicon as the backbone was explored and it was found that this structural feature leads to fluids with remarkably low density and viscosity. The relatively low liquid densities suggest a large free volume in these liquids. Argon solubility was measured using a precise saturation method to probe the relative free volumes. Argon molar solubilities were slightly higher in ionic liquids with alkylsilane and siloxane groups within the cation, compared to carbon-based branched groups. The anion size, however, showed by far the dominant effect on argon solubility. Thermodynamic solvation parameters were derived from the solubility data and the argon solvation environment was modelled utilizing the polarizable CL&Pol force field. Semiquantitative analysis was in agreement with trends established from the experimental data. The results of this investigation demonstrate design principles for targeted ionic liquids when optimisation for the free volume is required, and demonstrate the utility of argon as a simple, noninteracting probe. As more ionic liquids find their way into industrial processes of scale, these findings are important for their utilisation in the capture of any gaseous solute, gas separation, or in processes involving the transformation of gases or small molecules.
Description: Funding Information: EB acknowledges post-doctoral grant No 1.1.1.2/VIAA/3/19/549 for funding. KG and IV thank IDEX-LYON for financial support (Programme Investissements d’Avenir ANR-16-IDEX-0005). MD simulations were performed on the computer clusters of the GENCI-IDRIS (Grant 2020-A0090800609) and the Pôle Scientifique de Modélisation Numérique (PSMN) at ENS de Lyon. KG acknowledges F. Philippi (Imperial College London) for the force field parameters for the [B(CN)] anion. The authors acknowledge Prof. T. Welton (Imperial College London) and Prof. A. Zicmanis (University of Latvia) for helpful discussions. 4 − Publisher Copyright: © 2022 The Royal Society of Chemistry.
DOI: 10.1039/d2sc01696f
ISSN: 2041-6520
Appears in Collections:Research outputs from Pure / Zinātniskās darbības rezultāti no ZDIS Pure

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