Dutt G B
Radiation Chemistry & Chemical Dynamics Division, Bhabha Atomic Research Centre, Trombay, Mumbai 400 085, India.
Chemphyschem. 2005 Mar;6(3):413-8. doi: 10.1002/cphc.200400337.
Solute-solvent interactions play an important role in determining the physicochemical properties of liquids and solutions. As a consequence, understanding these interactions has been one of the long-standing problems in physical chemistry. This Minireview describes our approach towards attaining this goal, which is to investigate rotational relaxation of a pair of closely related, medium-sized nondipolar solutes in a set of appropriately chosen solvents. Our studies indicate that solute-solvent hydrogen bonding significantly hinders solute rotation. We have also examined the role of solvent size both in the absence and presence of specific interactions and it has been observed that the size of the solvent has a bearing on solute rotation especially in the absence of specific interactions. Our results point to the fact that only strong solute-solvent hydrogen bonds have the ability to impede the rotation of the solute molecule because, in such a scenario, hydrogen-bonding dynamics and rotational dynamics transpire on comparable time scales. This aspect has been substantiated by measuring the reorientation times of the chosen solutes in solvents such as ethanol and trifluoroethanol, which have distinct hydrogen-bond donating and accepting abilities, and correlating them with solute-solvent interaction strengths. As an alternative treatment, it has been shown that specific interactions between the solute and the solvent can be modeled as dielectric friction with the extended charge distribution model. This approach is not unrealistic considering the fact that specific as well as non-specific interactions are electrostatic by nature and the differences between them are subtle.
溶质 - 溶剂相互作用在决定液体和溶液的物理化学性质方面起着重要作用。因此,理解这些相互作用一直是物理化学中长期存在的问题之一。本微型综述描述了我们实现这一目标的方法,即研究一对密切相关的中等大小非极性溶质在一组适当选择的溶剂中的旋转弛豫。我们的研究表明,溶质 - 溶剂氢键显著阻碍溶质旋转。我们还研究了在有无特定相互作用的情况下溶剂大小的作用,并且观察到溶剂大小对溶质旋转有影响,特别是在没有特定相互作用的情况下。我们的结果表明,只有强溶质 - 溶剂氢键才有能力阻碍溶质分子的旋转,因为在这种情况下,氢键动力学和旋转动力学发生在相当的时间尺度上。通过测量所选溶质在具有不同氢键供体和受体能力的溶剂(如乙醇和三氟乙醇)中的重新取向时间,并将它们与溶质 - 溶剂相互作用强度相关联,这一方面得到了证实。作为一种替代处理方法,已经表明溶质和溶剂之间的特定相互作用可以用扩展电荷分布模型作为介电摩擦来建模。考虑到特定相互作用和非特定相互作用本质上都是静电的,而且它们之间的差异很细微,这种方法并非不切实际。