4.5 Article

Hydration and Hydrogen Bond Network of Water during the Coil-to-Globule Transition in Poly(N-isopropylacrylamide) Aqueous Solution at Cloud Point Temperature

期刊

JOURNAL OF PHYSICAL CHEMISTRY B
卷 119, 期 17, 页码 5576-5587

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.jpcb.5b01021

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资金

  1. Industry-Academia Collaborative R&D from Japan Science and Technology Agency
  2. JSPS KAKENHI Grant [26295]
  3. Grants-in-Aid for Scientific Research [14J00295] Funding Source: KAKEN

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Aqueous solutions of poly(N-isopropylacrylamide), P-NIPAAm, exhibit a noticeable temperature responsive change in molecular conformation at a cloud point temperature (T-cp). As the temperature rises above T-cp, the extended coil-like P-NIPAAm structure changes into a swollen globule-like conformation as hydration levels decrease and hydrophobic interactions increase. Though water plays an important role in this Coil-to-globule transition of P-NIPAAm, the behavior of water molecules and the associated hydrogen-bond (HB) network of the surrounding bulk water are still veiled in uncertainty. In this study, we elucidate changes in the hydration state and the dynamical structure of-the water HB network of P-NIPAAm aqueous solutions during the coil-to-globule transition by analyzing the complex dielectric constant in the terahertz region (0.25-12 THz), where bulk water reorientations and intermolecular vibrations of water can be selectively probed The structural properties of the water HB network were examined In terms of the population of the non-HB water molecule (not directly engaged in the HB network or hydrated to P-NIPAAm) and the tetrahedral coordination of the water molecules engaged in the HB netwotk. We found the hydration number below T-cp (approximate to 10) was decreased to approximately 6.5 as temperature increased, in line With previous studies. The HB network of bulk water becomes more structured as the coil-to-globule phase transition takes place, via decreases in non-HB water and reduction in the orderliness of the tetrahedral HB architecture. Together these results indicate that the coil-to-globule transition is associated with a shift to hydrophobic-dominated interactions that drive thermoresponsive structural changes in the Surrounding water molecules.

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