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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Effect of Hydrogen Bonds on the Vibrational Relaxation and Orientational Relaxation Dynamics of HN3 and N-3(-) in Solutions
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Effect of Hydrogen Bonds on the Vibrational Relaxation and Orientational Relaxation Dynamics of HN3 and N-3(-) in Solutions

机译:氢键对溶液中HN3和N-3(-)的振动弛豫和取向弛豫动力学的影响

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摘要

Hydrogen bonds (H-bonds) play an important role in determining the structures and dynamics of molecular systems. In this work, we investigated the effect of H-bonds on the vibrational population relaxation and orientational relaxation dynamics of HN3 and N-3(-) in methanol (CH3OH) and N,N-dimethyl sulfoxide (DMSO) using polarization controlled infrared pump-probe spectroscopy and quantum chemical calculations. Our detailed analysis of experimental and computational results reveals that both vibrational population relaxation and orientational relaxation dynamics of HN3 and N-3(-) in CH3OH and DMSO are substantially dependent on the strength of the H-bonds between the probing solute and its surrounding solvent. Especially in the case of N-3(-) in CH3OH, the vibrational population relaxation of N-3(-) is found to occur by a direct intermolecular vibrational energy transfer to CH3OH due to large vibrational coupling strength. The orientational relaxation dynamics of HN3 and N-3(-), which are well fit by a biexponential function, are analyzed by the wobbling-in-a-cone model and extended Debye-Stokes-Einstein equation. Depending on the intermolecular interactions, the slow overall orientational relaxation occurs under slip, stick, and superstick boundary conditions. For HN3 and N-3(-) in CH3OH and DMSO, the vibrational population relaxation becomes faster but the orientational relaxation becomes slower as the H-bond strength is increased. Our current results imply that, H-bonds have significant effects on the vibrational population relaxation and orientational relaxation dynamics of a small solute whose size is comparable to the size of the solvent.
机译:氢键(氢键)在决定分子系统的结构和动力学方面起着重要作用。在这项工作中,我们使用偏振控制红外泵研究了H键对HN3和N-3(-)在甲醇(CH3OH)和N,N-二甲基亚砜(DMSO)中的振动种群弛豫和取向弛豫动力学的影响-探针光谱学和量子化学计算。我们对实验和计算结果的详细分析表明,CH3OH和DMSO中HN3和N-3(-)的振动种群弛豫和取向弛豫动力学都基本上取决于探测溶质与其周围溶剂之间的H键强度。尤其是在CH3OH中为N-3(-)的情况下,由于较大的振动耦合强度,通过直接将分子间振动能量转移到CH3OH中,发现了N-3(-)的振动种群弛豫。利用双指数函数很好地拟合了HN3和N-3(-)的取向弛豫动力学,该模型由一个圆锥锥模型和扩展的Debye-Stokes-Einstein方程进行了分析。根据分子间的相互作用,缓慢的总体取向松弛发生在滑移,粘滞和超粘滞边界条件下。对于CH3OH和DMSO中的HN3和N-3(-),随着H键强度的增加,振动总体弛豫变快,而取向弛豫变慢。我们目前的结果表明,氢键对小溶质的振动种群弛豫和取向弛豫动力学具有显着影响,该溶质的大小与溶剂的大小相当。

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