4.7 Article

Signatures of Solvation Thermodynamics in Spectra of Intermolecular Vibrations

期刊

JOURNAL OF CHEMICAL THEORY AND COMPUTATION
卷 13, 期 9, 页码 4467-4481

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.jctc.7b00184

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资金

  1. Cluster of Excellence RESOLV - Deutsche Forschungsgemeinschaft [EXC 1069]
  2. European Research Council (ERC) under the European Union's Horizon research and innovation programme [695437]
  3. Max-Planck-Institut far Kohlenforschung

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This study explores the thermodynamic and vibrational properties of water in the three-dimensional environment of solvated-ions and small molecules using molecular simulations. The spectrum of intermolecular vibrations in liquid solvents provides detailed information on the shape of the local potential energy surface, which in-him determines local thermodynamic properties such as the entropy, Here, we extract this inforMatiou using 2 spatially resolved extension of the two-phase thermodynamics method to estimate hydration water entropies based-on the local vibrational density of states (3D-213T). Combined with an analySis of solute water and water-water interaction energies, this allows us to resolve local contributions to the solvation enthalpy, entropy, and free energy. We use this approach to study effects of ions on their surrounding water hydrogen bond network, its spectrum of intermolecular vibrations, and resulting thermodynamic properties, In the three-dimensional environment-of polar and nonpolar functional groups of molecular solutes, We identify distinct hydration water species and classify them by their characteristic vibrational density of states and molecular entropies. In each case, we are able to assign variations in Total hydration water entropies to specific changes in the spectrum of intermolecular vibrations. This provides an important link for the thermodynamic interpretation of vibrational spectra that are accessible to far-infrared absorption and Raman spectroscopy experiments. Our analysis provides unique microscopic details regarding the hydration of hydrophobic and hydrophilic functional groups, which enable us to identify interactions and molecular degrees of freedom that determine relevant contributions to the solvation entropy and consequently the free energy.

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