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Anharmonic exciton dynamics and energy dissipation in liquid water from two-dimensional infrared spectroscopy

机译:二维红外光谱法研究液态水中的非谐激子动力学和能量耗散

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Water's extended hydrogen-bond network results in rich and complex dynamics on the sub-picosecond time scale. In this paper, we present a comprehensive analysis of the two-dimensional infrared (2D IR) spectrum of O-H stretching vibrations in liquid H2O and their interactions with bending and intermolecular vibrations. By exploring the dependence of the spectrum on waiting time, temperature, and laser polarization, we refine our molecular picture of water's complex ultrafast dynamics. The spectral evolution following excitation of the O-H stretching resonance reveals vibrational dynamics on the 50-300 fs time scale that are dominated by intermolecular delocalization. These O-H stretch excitons are a result of the anharmonicity of the nuclear potential energy surface that arises from the hydrogen-bonding interaction. The extent of O-H stretching excitons is characterized through 2D depolarization measurements that show spectrally dependent delocalization in agreement with theoretical predictions. Furthermore, we show that these dynamics are insensitive to temperature, indicating that the exciton dynamics alone set the important time scales in the system. Finally, we study the evolution of the O-H stretching mode, which shows highly non-adiabatic dynamics suggestive of vibrational conical intersections. We argue that the so-called heating, commonly observed within similar to 1 ps in nonlinear IR spectroscopy of water, is a nonequilibrium state better described by a kinetic temperature rather than a Boltzmann distribution. Our conclusions imply that the collective nature of water vibrations should be considered in describing aqueous solvation. Published by AIP Publishing.
机译:水的扩展氢键网络导致了亚皮秒级的丰富而复杂的动力学。在本文中,我们对液态H2O中O-H拉伸振动的二维红外(2D IR)光谱及其与弯曲和分子间振动的相互作用进行了全面分析。通过探索光谱对等待时间,温度和激光偏振的依赖性,我们完善了水的复杂超快动力学的分子图。 O-H拉伸共振激发后的光谱演化揭示了在50-300 fs时标上的振动动力学,这些振动动力学以分子间离域为主导。这些O-H拉伸激子是由氢键相互作用引起的核势能表面非谐性的结果。 O-H拉伸激子的程度通过2D去极化测量来表征,该测量显示与理论预测相一致的光谱相关的离域。此外,我们表明这些动力学对温度不敏感,表明激子动力学本身就在系统中设定了重要的时间尺度。最后,我们研究了O-H拉伸模式的演变过程,该过程显示出高度非绝热动力学,暗示了振动圆锥形交叉点。我们认为,所谓的加热通常是在水的非线性IR光谱中大约1 ps内观察到的,它是一种非平衡状态,可以用动力学温度而非玻尔兹曼分布更好地描述。我们的结论暗示,在描述水溶过程中应考虑水振动的集体性质。由AIP Publishing发布。

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