| Literature DB >> 29200290 |
Evgenii O Fetisov1, David B Harwood1, I-Feng William Kuo2, Samah E E Warrag3, Maaike C Kroon3, Cor J Peters3, J Ilja Siepmann1,4.
Abstract
First-principles molecular dynamics simulations in the canonical ensemble at temperatures of 333 and 363 K and at the corresponding experimental densities are carried out to investigate the behavior of the 1:2 choline chloride/urea (reline) deep eutectic solvent and its equimolar mixture with water. Analysis of atom-atom radial and spatial distribution functions and of the H-bond network reveals the microheterogeneous structure of these complex liquid mixtures. In neat reline, the structure is governed by strong H-bonds of the trans- and cis-H atoms of urea to the chloride ion. In hydrous reline, water competes for the anions, and the H atoms of urea have similar propensities to bond to the chloride ions and the O atoms of urea and water. The vibrational spectra exhibit relatively broad peaks reflecting the heterogeneity of the environment. Although the 100 ps trajectories allow only for a qualitative assessment of transport properties, the simulations indicate that water is more mobile than the other species and its addition also fosters faster motion of urea.Entities:
Year: 2018 PMID: 29200290 DOI: 10.1021/acs.jpcb.7b10422
Source DB: PubMed Journal: J Phys Chem B ISSN: 1520-5207 Impact factor: 2.991