Department of Applied Chemistry, Meiji University, Kawasaki 214-8571, Japan.
J Phys Chem B. 2010 Mar 18;114(10):3419-25. doi: 10.1021/jp906826q.
Raman spectroscopy was used to investigate the temperature dependence of structural changes of bound water in dried glassy poly-N,N,-dimethylacrylamide in the temperature range 286.1-329.7 K. The results show that the frequency of the O-H stretching mode of the bound water that is present in the dried glassy polymer shifts to the higher side with increasing temperature. The rate changes at around 310 K, while that for the bulk water is constant in the temperature range studied. The rates of change of the frequencies for the C=O stretching mode and CH(3) rocking mode also change at around 310 K. These results indicate a significant change in the interaction between the bound water and polymer chains at 310 K. Temperature dependence of the local structure of the bound water was analyzed by applying a structural model of bulk water to the spectra of the O-H stretching region. The result shows that the density of a tetragonal water structure consisting of four hydrogen bonds increases with increasing temperature below 310 K and begins to decrease at temperatures above 310 K. Further, estimates of the water content indicate that the evaporation rate of the bound water significantly changes at around 310 K. These results suggest that the bound water present in the dried glassy polymer can be classified as being in two states. At temperatures below 310 K, the water that forms a shell layer around the polymer chains evaporates, while at temperatures above 310 K the water that is bound to polar groups of polymer chains begins to evaporate. The structural changes of bound water might have important implications for the interpretation of properties of hydrated polymer systems, including both biological and synthetic polymers.
拉曼光谱被用于研究在 286.1-329.7 K 温度范围内,干燥的玻璃态聚 N,N-二甲基丙烯酰胺中结合水的结构变化对温度的依赖性。结果表明,存在于干燥玻璃态聚合物中的结合水的 O-H 伸缩模式的频率随温度的升高而向较高侧移动。在 310 K 左右变化率发生变化,而在研究的温度范围内,体相水的变化率是恒定的。C=O 伸缩模式和 CH(3) 摇摆模式的频率变化率也在 310 K 左右发生变化。这些结果表明,在 310 K 左右,结合水与聚合物链之间的相互作用发生了显著变化。通过将体相水的结构模型应用于 O-H 伸缩区域的光谱,分析了结合水的局部结构的温度依赖性。结果表明,由四个氢键组成的四方形水结构的密度在 310 K 以下随温度的升高而增加,在 310 K 以上开始降低。此外,对含水量的估计表明,结合水的蒸发速率在 310 K 左右发生显著变化。这些结果表明,干燥玻璃态聚合物中存在的结合水可以分为两种状态。在 310 K 以下的温度下,形成聚合物链周围壳层的水蒸发,而在 310 K 以上的温度下,与聚合物链的极性基团结合的水开始蒸发。结合水的结构变化可能对解释水合聚合物体系的性质具有重要意义,包括生物和合成聚合物。