Department of Chemistry, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.
J Chem Phys. 2011 Aug 7;135(5):054509. doi: 10.1063/1.3623008.
Rearrangements of the hydrogen bond network of liquid water are believed to involve rapid and concerted hydrogen bond switching events, during which a hydrogen bond donor molecule undergoes large angle molecular reorientation as it exchanges hydrogen bonding partners. To test this picture of hydrogen bond dynamics, we have performed ultrafast 2D IR spectral anisotropy measurements on the OH stretching vibration of HOD in D(2)O to directly track the reorientation of water molecules as they change hydrogen bonding environments. Interpretation of the experimental data is assisted by modeling drawn from molecular dynamics simulations, and we quantify the degree of molecular rotation on changing local hydrogen bonding environment using restricted rotation models. From the inertial 2D anisotropy decay, we find that water molecules initiating from a strained configuration and relaxing to a stable configuration are characterized by a distribution of angles, with an average reorientation half-angle of 10°, implying an average reorientation for a full switch of ≥20°. These results provide evidence that water hydrogen bond network connectivity switches through concerted motions involving large angle molecular reorientation.
据信,液态水中氢键网络的重排涉及快速协同的氢键切换事件,在此过程中,氢键供体分子在与其氢键供体/受体交换时会发生大角度分子重排。为了验证氢键动力学的这一图像,我们对 D(2)O 中 HOD 的 OH 伸缩振动进行了超快二维红外光谱各向异性测量,以直接跟踪水分子在改变氢键环境时的重排。通过从分子动力学模拟中得出的模型,对实验数据进行了解释,我们使用受限旋转模型来量化在改变局部氢键环境时分子旋转的程度。从惯性二维各向异性衰减中,我们发现从应变构型弛豫到稳定构型的水分子的特征是存在一个角度分布,平均重取向半角为 10°,这意味着完整切换的平均重取向≥20°。这些结果提供了证据,表明水的氢键网络连接性通过涉及大角度分子重排的协同运动进行切换。