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Optical Kerr effect of liquid and supercooled water: The experimental and data analysis perspective

机译:液体和过冷水的光学克尔效应:实验和数据分析的角度

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The time-resolved optical Kerr effect spectroscopy (OKE) is a powerful experimental tool enabling accurate investigations of the dynamic phenomena in molecular liquids. We introduced innovative experimental and fitting procedures, that enable a safe deconvolution of sample response function from the instrumental function. This is a critical issue in order to measure the dynamics of liquid water.We report OKE data on water measuring intermolecular vibrations and the structural relaxation processes in an extended temperature range, inclusive of the supercooled states. The unpreceded data quality makes possible a solid comparison with few theoretical models: the multi-mode Brownian oscillator model, the Kubo's discrete random jump model, and the schematic mode-coupling model. All these models produce reasonable good fits of the OKE data of stable liquid water, i.e., over the freezing point. The features of water dynamics in the OKE data becomes unambiguous only at lower temperatures, i.e., for water in the metastable supercooled phase. We found that the schematic mode-coupling model provides the more rigorous and complete model for water dynamics, even if its intrinsic hydrodynamic approach does not give a direct access to the molecular information.
机译:时间分辨光学克尔效应光谱(OKE)是一种功能强大的实验工具,可对分子液体中的动态现象进行准确的研究。我们引入了创新的实验和拟合程序,可以安全地将样品响应函数从仪器函数中解卷积。这是测量液态水动力学的关键问题。我们报告了OKE数据,该数据用于在扩展温度范围内(包括过冷状态)测量分子间振动和结构弛豫过程。无与伦比的数据质量使得可以与几种理论模型进行可靠的比较:多模式Brownian振荡器模型,Kubo的离散随机跳跃模型和原理图模式耦合模型。所有这些模型都产生了稳定液态水OKE数据的合理良好拟合,即在冰点以上。 OKE数据中的水动力学特征仅在较低温度下才变得明确,即对于亚稳过冷相中的水。我们发现,原理图模式耦合模型为水动力学提供了更严格和完整的模型,即使其固有的流体动力学方法不能直接访问分子信息也是如此。

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