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首页> 外文期刊>The Journal of Chemical Physics >Local hydrogen bonding dynamics and collective reorganization in water: Ultrafast infrared spectroscopy of HOD/D2O
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Local hydrogen bonding dynamics and collective reorganization in water: Ultrafast infrared spectroscopy of HOD/D2O

机译:水中的局部氢键动力学和集体重组:HOD / D2O的超快红外光谱

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We present an investigation into hydrogen bonding dynamics and kinetics in water using femtosecond infrared spectroscopy of the OH stretching vibration of HOD in D2O. Infrared vibrational echo peak shift and polarization-selective pump-probe experiments were performed with mid-IR pulses short enough to capture all relevant dynamical processes. The experiments are self-consistently analyzed with a nonlinear response function expressed in terms of three dynamical parameters for the OH stretching vibration: the frequency correlation function, the lifetime, and the second Legendre polynomial dipole reorientation correlation function. It also accounts for vibrational-relaxation-induced excitation of intermolecular motion that appears as heating. The long time, picosecond behavior is consistent with previous work, but new dynamics are revealed on the sub-200 fs time scale. The frequency correlation function is characterized by a 50 fs decay and 180 fs beat associated with underdamped intermolecular vibrations of hydrogen bonding partners prior to 1.4 ps exponential relaxation. The reorientational correlation function observes a 50 fs librational decay prior to 3 ps diffusive reorientation. Both of these correlation functions compare favorably with the predictions from classical molecular dynamics simulations. The time-dependent behavior can be separated into short and long time scales by the 340 fs correlation time for OH frequency shifts. The fast time scales arise from dynamics that are mainly local: fluctuations in hydrogen bond distances and angles within relatively fixed intermolecular configurations. On time scales longer than the correlation time, dephasing and reorientations reflect collective reorganization of the liquid structure. Since the OH transition frequency and dipole are only weakly sensitive to these collective coordinates, this is a kinetic regime which gives an effective rate for exchange of intermolecular structures. (C) 2005 American Institute of Physics.
机译:我们使用飞秒红外光谱研究D2O中HOD的OH拉伸振动,对水中的氢键动力学和动力学进行了研究。红外振动回波峰移和偏振选择性泵浦探针实验是用中红外脉冲短到足以捕获所有相关动力学过程进行的。用非线性响应函数对实验进行自洽分析,非线性响应函数表示为OH拉伸振动的三个动力学参数:频率相关函数,寿命和第二勒让德多项式偶极子重新定向相关函数。它也解释了振动松弛引起的分子间运动的激发,表现为加热。皮秒的长时间行为与以前的工作是一致的,但是在低于200 fs的时标上揭示了新的动态。频率相关函数的特征在于,在1.4 ps指数松弛之前,氢键键合分子的分子阻尼不足以引起50 fs衰减和180 fs拍频。重新定向相关函数在3 ps扩散重新定向之前观察到50 fs的自由衰减。这两个相关函数都与经典分子动力学模拟的预测相吻合。取决于时间的行为可以通过340 fs的OH频移相关时间分为短时标度和长时标度。快速时标是由主要是局部的动力学引起的:相对固定的分子间构型内氢键距离和角度的波动。在比相关时间更长的时间尺度上,移相和重新定向反映了液体结构的集体重组。由于OH跃迁频率和偶极子仅对这些集体坐标敏感,因此这是一种动力学机制,可提供有效的分子间结构交换速率。 (C)2005美国物理研究所。

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