Department of Chemistry , Stanford University , Stanford , California 94305 , United States.
J Phys Chem B. 2018 Oct 18;122(41):9538-9548. doi: 10.1021/acs.jpcb.8b06205. Epub 2018 Oct 3.
The orientational dynamics and microscopic structures of nicotine/water binary mixtures near the system's lower critical solution temperature (LCST) were elucidated using optical heterodyne-detected optical Kerr effect (OHD-OKE) spectroscopy, nuclear magnetic resonance correlation spectroscopy (NMR COSY), first-principles calculations, and molecular dynamics simulations. Water concentrations were investigated from zero to close to pure water. At temperatures below the LCST, OHD-OKE experiments measured an anomalous slowing as the phase transition concentration was approached. At moderate concentrations and low temperatures, intermolecular cross-peaks between nicotine and water molecules were observed in the COSY spectra, demonstrating the formation of structures that persist for milliseconds. These results suggest that pair correlations contribute to the slowdown in the OHD-OKE data at moderate water concentrations. First-principles calculations revealed that intermolecular hydrogen bonding coordination between nitrogen atoms in pyridine moieties and water lowers the energy barriers for the reorientations of the two nicotine rings. Atomistic simulations demonstrate that with increasing water concentration, hydrogen bonding interactions between pyridine moieties and water molecules first increase and then decrease with a maximum at moderate water concentrations. These experimental and computational characterizations of the dynamics of nicotine molecules are attributed to the distinct configurations of water molecules around the pyridine ring moieties in nicotine molecules.
利用光外差探测光学克尔效应(OHD-OKE)光谱、核磁共振相关光谱(NMR COSY)、第一性原理计算和分子动力学模拟,阐明了尼古丁/水二元混合物在系统低临界溶液温度(LCST)附近的取向动力学和微观结构。研究了水浓度从零到接近纯水的范围。在低于 LCST 的温度下,OHD-OKE 实验在接近相转变浓度时测量到异常减速。在中等浓度和低温下,在 COSY 光谱中观察到尼古丁和水分子之间的分子间交叉峰,表明存在持续数毫秒的结构形成。这些结果表明,在中等水浓度下,分子间相互作用对 OHD-OKE 数据的减速起作用。第一性原理计算表明,吡啶基团中氮原子之间的分子间氢键配位降低了两个尼古丁环重取向的能垒。原子模拟表明,随着水浓度的增加,吡啶基团和水分子之间的氢键相互作用首先增加,然后在中等水浓度下减小,在中等水浓度下达到最大值。这些对尼古丁分子动力学的实验和计算表征归因于尼古丁分子中吡啶环部分周围水分子的独特构型。