4.6 Article

Structural evolution of water-in-propylene carbonate mixtures revealed by polarized Raman spectroscopy and molecular dynamics

Journal

PHYSICAL CHEMISTRY CHEMICAL PHYSICS
Volume 25, Issue 35, Pages 23963-23976

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d3cp02181e

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In this study, the structural changes that occur as water is added to propylene carbonate (PC) were investigated using polarized Raman spectroscopy and molecular dynamics simulations. It was observed that water tends to self-aggregate in PC, forming a distinct hydrogen bond network, and the degree of water aggregation increases with the concentration of PC.
The liquid structure of systems wherein water is limited in concentration or through geometry is of great interest in various fields such as biology, materials science, and electrochemistry. Here, we present a combined polarized Raman and molecular dynamics investigation of the structural changes that occur as water is added incrementally to propylene carbonate (PC), a polar, aprotic solvent that is important in lithium-ion batteries. Polarized Raman spectra of PC solutions were collected for water mole fractions 0.003 <= chi water <= 0.296, which encompasses the solubility range of water in PC. The novel approach taken herein provides additional hydrogen bond and solvation characterization of this system that has not been achievable in previous studies. Analysis of the polarized carbonyl Raman band in conjunction with simulations demonstrated that the bulk structure of the solvent remained unperturbed upon the addition of water. Experimental spectra in the O-H stretching region were decomposed through Gaussian fitting into sub-bands and comparison to studies of dilute HOD in D2O. With the aid of simulations, we identified these different bands as water arrangements having different degrees of hydrogen bonding. The observed water structure within PC indicates that water tends to self-aggregate, forming a hydrogen bond network that is distinctly different from the bulk and dependent on concentration. For example, at moderate concentrations, the most likely aggregate structures are chains of water molecules, each with two hydrogen bonds. Combined polarized Raman and MD simulation studies demonstrate that water undergoes increasing aggregation in mixtures with propylene carbonate as its concentration is increased.

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