Department of Chemical, Biological & Macromolecular Sciences, S.N. Bose National Centre for Basic Sciences, Block JD, Sector III, Salt Lake, Kolkata 700098, India.
Langmuir. 2013 Feb 12;29(6):1808-17. doi: 10.1021/la3042583. Epub 2013 Jan 28.
The effect of hydrophobic interaction on water is still controversial and requires more detailed experimental and theoretical investigation. The interaction between organic-water molecular complexes might be indicative of the perturbation of hydrogen-bond network in the tetrahedral structure of bulk waters, due to hydrophobic effect. In this contribution, femto/picosecond-resolved solvation dynamics techniques have been adopted to explore the dynamical modification of water clusters in hydrophobic solvent methyl tert-butyl ether (MTBE). The dynamical evolution of water molecules at the surface of micelle-like MTBE has also been studied. Dynamic light scattering techniques have been employed to determine the size of the molecular clusters being formed in respective solvents. Fourier transform infrared (FTIR) spectroscopy well measures the changes in O-H vibration frequency of water induced by MTBE. We have also monitored temperature dependent picosecond-resolved solvation dynamics in order to explore the energetics associated with water solvation in bulk MTBE. Using detailed ab initio calculations at the MP2 level, our study attempts to predict the possible structures, energies, and thermochemical parameters of corresponding MTBE-water molecular complexes in more detail. The chemical reactivity of water further confirms the effect of the hydrophobic interaction on water molecules. The results impart an understanding on hydrophobic interaction imposed by a biomolecule on the structure and reactivity of water, significant for the in vivo cellular condition.
疏水相互作用对水的影响仍存在争议,需要更详细的实验和理论研究。由于疏水效应,有机-水分子配合物之间的相互作用可能表明氢键网络在四面体结构的体相水中的扰动。在本研究中,我们采用飞秒/皮秒分辨的溶剂化动力学技术来研究疏水溶剂甲基叔丁基醚(MTBE)中水分子簇的动力学修饰。还研究了胶束状 MTBE 表面水分子的动力学演化。动态光散射技术被用于确定在各自溶剂中形成的分子簇的大小。傅里叶变换红外(FTIR)光谱很好地测量了 MTBE 诱导的水分子 O-H 振动频率的变化。我们还监测了依赖于温度的皮秒分辨溶剂化动力学,以研究与体相 MTBE 中水分子溶剂化相关的能量。使用 MP2 水平的详细从头算计算,我们的研究试图更详细地预测 MTBE-水分子配合物的可能结构、能量和热化学参数。水的化学反应性进一步证实了疏水相互作用对水分子的影响。这些结果使我们能够更好地理解生物分子对水的结构和反应性施加的疏水相互作用,这对于体内细胞环境非常重要。