The Institute for Chemical Physics, Key Laboratory of Cluster Science, Beijing Institute of Technology, Beijing 100081, People's Republic of China.
J Phys Chem A. 2010 Jul 1;114(25):6795-802. doi: 10.1021/jp912180d.
Attenuated total reflectance-Fourier transform infrared (ATR-FTIR) measurements were carried out on the 1-propanol-water (abbreviated as 1PA-W) mixtures over the entire 1-propanol molar fraction range at 298 K. The two bands at approximately 1053 and approximately 1068 cm(-1), assigned to the vibrational modes of the gauche (v(C-C-C-O-G)) and the trans (v(C-C-C-O-T)) conformational isomers, respectively, which both include C-O and C-C stretching motions, were used to monitor the structural changes of the mixtures. When the water to 1-propanol molar ratio (WPR) is smaller than 0.2, the absorbance ratio of the two bands (A(vC-C-C-O-G)/A(vC-C-C-O-T)) remains constant at 1.42, characteristic of the existence of the 1-propanol aggregate chains, hydrogen-bonded by the O-H groups of 1-propanol in gauche conformations. When increasing the WPR from 0.2 to 20, there is an abrupt decrease in the absorbance ratio (A(vC-C-C-O-G)/A(vC-C-C-O-T)) from 1.42 to 1.01, corresponding to penetration of water molecules into the gauche-aggregate chains. The penetrated water molecules disrupt the 1PA chains and transform these gauche-aggregate 1PA chains to trans-aggregate chains, which are 1PA dimers of trans-conformation. The structural change induces complicated spectroscopic changes, including the red shifts of the series of bands 1016, 1053, and 1098 cm(-1) and blue shifts of the bands 2877, 2937, and 2961 cm(-1). With further increase of WPR up to 100, the absorbance ratio of A(vC-C-C-O-G)/A(vC-C-C-O-T) increases from 0.98 to 1.07, indicating a transformation of partial 1PA dimers to single molecules with gauche-conformation in the water hydrogen-bonding network. Together with results from quantum calculations at the B3L YP/6-31G (d, p) level, and two-dimensional infrared correlation and excess spectroscopy analysis, the structural evolution of water and 1PA molecules in 1PA-W mixtures has been inferred.
在 298 K 下,对 1-丙醇-水(缩写为 1PA-W)混合物进行了衰减全反射傅里叶变换红外(ATR-FTIR)测量,覆盖了整个 1-丙醇摩尔分数范围。两个约为 1053 和 1068 cm(-1) 的波段分别分配给 gauche(v(C-C-C-O-G))和 trans(v(C-C-C-O-T))构象异构体的振动模式,它们都包括 C-O 和 C-C 伸缩运动,用于监测混合物的结构变化。当水与 1-丙醇的摩尔比(WPR)小于 0.2 时,两个波段的吸收比(A(vC-C-C-O-G)/A(vC-C-C-O-T))保持在 1.42,这是 1-丙醇聚合链存在的特征,这些聚合链通过 1-丙醇中 O-H 基团的 gauche 构象氢键结合。当 WPR 从 0.2 增加到 20 时,吸收比(A(vC-C-C-O-G)/A(vC-C-C-O-T))从 1.42 急剧下降到 1.01,对应于水分子渗透到 gauche-聚合链中。渗透的水分子破坏了 1PA 链,并将这些 gauche-聚合 1PA 链转化为 trans-聚合链,这是 trans-构象的 1PA 二聚体。结构变化引起了复杂的光谱变化,包括一系列 1016、1053 和 1098 cm(-1) 波段的红移以及 2877、2937 和 2961 cm(-1) 波段的蓝移。随着 WPR 进一步增加到 100,A(vC-C-C-O-G)/A(vC-C-C-O-T) 的吸收比从 0.98 增加到 1.07,表明部分 1PA 二聚体转变为在水氢键网络中具有 gauche-构象的单个分子。结合 B3LYP/6-31G(d,p)水平的量子计算结果、二维红外相关和过剩光谱分析,推断了 1PA-W 混合物中水分子和 1PA 分子的结构演化。