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Inter/intra molecular dynamics in gases and liquids studied by terahertz time-domain spectroscopy.

机译:通过太赫兹时域光谱研究了气体和液体中的分子间/分子内动力学。

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This thesis presents a description of the low-frequency terahertz (THz) absorption spectrum of a variety of materials that are of interest to many biological and chemical processes. The work described here encompasses the development of time-domain THz spectrometers, based on amplified Ti: Sapphire lasers systems as well as mode-locked Erbium doped fiber lasers as the driving source. These systems were applied to characterize the absorption spectrum of liquid water and water vapor, heavy water vapor, methanol vapor and tryptophan in the 0.2-2.2THz frequency range. The absorption profiles observed are closely related to the intermolecular or intramolecular motions in the materials of interest. In liquid water, the absorption profile shows evidence for modes due to large-scale structure amongst individual water molecules. The effects on the overall absorption profile are further deduced by the addition of various solutes which can enhance or break the formation of molecule networks. Various solutions are examined such as KCl in liquid water. Ions can change the strength of hydrogen bond in liquid water in the similar way as temperature does. Both K+ and Cl- are considered to be strong "structure breakers" in terms of their functions as softening the strength of hydrogen bond in liquid water. Theoretically, this will cause a red shift of some mode frequencies, reducing the absorption intensity at those frequencies and, at the same time, increasing the absorption at non-mode frequencies toward the vicinity of the low frequencies. For liquid water, the vapor phase was also examined, where for varying concentrations (humidity) Beer's Law does not hold to explain the observed absorption profiles. Again the reduced absorption of certain modes is explained by interactions between water monomers and their nature due to hydrogen spins. There are two species of water molecules in terms of the nuclear spin effect of hydrogen atoms in water molecule, ortho-water and para-water. The two types of water molecules present significantly different properties, e.g. different surface adsorption on metals. The effects of para-water and ortho-water on the THz absorption profile are discussed. Finally, I discuss the absorption profile of methanol vapor and tryptophan. In methanol vapor we observe coherent echoes after absorption by a THz transient and attribute it to the relaxation of the molecule due to the regularly spaced rotational manifold. In tryptophan two distinct absorption modes are observed due to torsional modes. These "soft-modes" are calculated and attributed to intramolecular motions between various atoms. The results of this body of work are discussed in the context of applications ranging from medicine, pharmaceuticals and the cosmetics industries.
机译:本文介绍了许多生物和化学过程感兴趣的各种材料的低频太赫兹(THz)吸收光谱。本文所述的工作包括基于放大的Ti:蓝宝石激光器系统以及锁模掺Er光纤激光器作为驱动源的时域THz光谱仪的开发。这些系统用于表征液态水和水蒸气,重水蒸气,甲醇蒸气和色氨酸在0.2-2.2THz频率范围内的吸收光谱。观察到的吸收曲线与目标材料中的分子间或分子内运动密切相关。在液态水中,吸收曲线显示出由于各个水分子之间的大规模结构而导致模式的证据。通过添加各种可以增强或破坏分子网络形成的溶质,进一步推断出对总体吸收曲线的影响。检查了各种溶液,例如在液态水中的氯化钾。离子可以像温度一样改变液态水中氢键的强度。就K +和Cl-作为软化液态水中氢键强度的功能而言,它们均被认为是强大的“结构破坏者”。从理论上讲,这将导致某些模式频率的红移,从而降低那些频率下的吸收强度,同时,会增加非模式频率下向低频附近的吸收。对于液态水,还检查了气相,对于变化的浓度(湿度),比尔定律无法解释观测到的吸收曲线。再者,由于氢旋转,水单体之间的相互作用及其性质解释了某些模式的吸收减少。就水分子中氢原子的核自旋效应而言,有两种水分子,即原水和副水。两种类型的水分子表现出明显不同的性质,例如不同的表面吸附在金属上。讨论了淡水和原水对太赫兹吸收曲线的影响。最后,我讨论了甲醇蒸气和色氨酸的吸收曲线。在甲醇蒸气中,我们观察到被THz瞬变吸收后的相干回波,并将其归因于规则间隔的旋转歧管引起的分子弛豫。在色氨酸中,由于扭转模式而观察到两种不同的吸收模式。计算这些“软模式”并将其归因于各种原子之间的分子内运动。在医学,制药和化妆品行业的应用范围内讨论了这一工作成果。

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