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Nonpolar Water Clusters: Proton Nuclear Magnetic Resonance Spectroscopic Evidence for Transformation from Polar Water to Nonpolar Water Clusters in Liquid State. | LitMetric

Nonpolar Water Clusters: Proton Nuclear Magnetic Resonance Spectroscopic Evidence for Transformation from Polar Water to Nonpolar Water Clusters in Liquid State.

J Phys Chem Lett

Department of Applied Chemistry and Research Institute for Science and Engineering, Waseda University, 3-4-1 Okubo Shinjuku, Tokyo 169-8555, Japan.

Published: January 2021

AI Article Synopsis

  • The study investigates how water behaves in nonpolar environments, focusing on the interactions between hydrophilic and hydrophobic forces during the formation of water clusters.
  • It provides direct experimental evidence showing that these water clusters form through hydrogen bonds solely among water molecules, not with other substances like hexanol.
  • This finding highlights the nonpolar nature of these clusters, marking a significant advancement in understanding water's role in various scientific fields such as chemistry, biology, and materials science.

Article Abstract

The hydrophilic/hydrophobic interactions of water are important in biological and chemical self-assembly phenomena. Water clusters in hydrophobic environments exhibit a unique morphology. Their process of formation and nonpolar properties have been extensively studied, but no direct experimental evidence has been available until now. This study provides spectroscopic evidence for the transformation of water to nonpolar configuration via clustering. Although individual water molecules form hydrogen bonds with the hydroxyl protons of hexanol when codissolved in a nonpolar solvent (toluene-), the water clusters are comprised solely of hydrogen bonds between water molecules and do not form hydrogen bonds with the hydroxyl protons of hexanol. This behavior indicates that the water clusters are nonpolar rather than polar. This study reports the first example of nonpolar water configuration produced via a liquid-state clustering. This property is a common and important interfacial phenomenon of water in chemistry, biology, materials science, geology, and meteorology.

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Source
http://dx.doi.org/10.1021/acs.jpclett.0c02646DOI Listing

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