6533b85bfe1ef96bd12ba210
RESEARCH PRODUCT
Liquid structure of a choline chloride-water natural deep eutectic solvent: A molecular dynamics characterization
Alessandro TrioloValerio Di LisioFabrizio Lo CelsoMartin BrehmOlga Russinasubject
deep eutectic solvent02 engineering and technology010402 general chemistry01 natural sciencesChloridechemistry.chemical_compoundMolecular dynamicsPhase (matter)Materials ChemistrymedicineMoleculePhysical and Theoretical ChemistrySpectroscopyEutectic systemChemistryHydrogen bond021001 nanoscience & nanotechnologyCondensed Matter PhysicsAtomic and Molecular Physics and Opticsmolecular dynamicsPARTICLE MESH EWALDIONIC LIQUIDSNEUTRON-SCATTERINGMIXTURESNANOSTRUCTUREDENSITYACID0104 chemical sciencesElectronic Optical and Magnetic MaterialsDeep eutectic solventPhysical chemistry0210 nano-technologyliquid structuremedicine.drugCholine chloridedescription
The liquid structure of a representative of the first water-in-salt (WiS) Natural Deep Eutectic Solvents (NADES), hereinafter indicated as aquoline, a mixture of choline chloride (ChCl) and water with molar ratio 1:3.33, is ex- plored at ambient conditions. Using Molecular Dynamics (MD) simulation tools, we extract structural informa- tion at atomistic level on the nature of inter-correlations between the different moieties. Despite being a very fluid liquid, with much lower viscosity than other common ChCl-based DES, aquoline turns out to be very struc- tured. Computed X-ray and neutron weighted scattering patterns (the latter also on selectively deuterated mix- tures) highlight the existence of mesoscopic organization that is rationalised in terms of choline vs. water/ chloride structural alternation. The study shows that choline cations are highly coordinating the surrounding en- vironment: strong hydrogen bonding mediated correlations between the hydroxyl group and water or chloride are detected. In addition, the ammonium group drives the formation of a complex solvating environment, with water, chloride and hydroxyl moieties approaching it, between the hindering methyl groups. Strong hydrogen- bonding interactions between water molecules and between water and anions are detected and, while water cannot create a bulk water-like environment around itself, its network with neighbour water or anions develops long chains across the bulk phase. This is a first study that will be extended based on complementary experimen- tal work as a function of water content and temperature/pressure, to explore structural and dynamic properties of this class of materials.
year | journal | country | edition | language |
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2021-06-01 |