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Vibrational spectroscopy and relaxation of an anharmonic oscillator coupled to harmonic bath

机译:振动光谱和与谐波浴耦合的非谐振荡器的弛豫

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The vibrational spectroscopy and relaxation of an anharmonic oscillator coupled to a harmonic bath are examined to assess the applicability of the time correlation function (TCF), the response function, and the semiclassical frequency modulation (SFM) model to the calculation of infrared (IR) spectra. These three approaches are often used in connection with the molecular dynamics simulations but have not been compared in detail. We also analyze the vibrational energy relaxation (VER), which determines the line shape and is itself a pivotal process in energy transport. The IR spectra and VER are calculated using the generalized Langevin equation (GLE), the Gaussian wavepacket (GWP) method, and the quantum master equation (QME). By calculating the vibrational frequency TCF, a detailed analysis of the frequency fluctuation and correlation time of the model is provided. The peak amplitude and width in the IR spectra calculated by the GLE with the harmonic quantum correction are shown to agree well with those by the QME though the vibrational frequency is generally overestimated. The GWP method improves the peak position by considering the zero-point energy and the anharmonicity although the red-shift slightly overshoots the QME reference. The GWP also yields an extra peak in the higher-frequency region than the fundamental transition arising from the difference frequency of the center and width oscillations of a wavepacket. The SFM approach underestimates the peak amplitude of the IR spectra but well reproduces the peak width. Further, the dependence of the VER rate on the strength of an excitation pulse is discussed. © 2011 American Institute of Physics Article Outline INTRODUCTION THEORETICAL BACKGROUND Time-correlation function Response function Semiclassical frequency modulation model SIMULATION TECHNIQUES Generalized Langevin equation Gaussian wavepacket method Time-local quantum master equation COMPUTATIONAL DETAILS RESULTS Frequency time correlation function Infrared spectra Peak position Peak amplitude Peak width Anharmonicity Extra peak in the Gaussian wavepacket method Motional narrowing from the semiclassical frequency modulation model Energy relaxation time CONCLUDING REMARKS
机译:研究了与谐波浴耦合的非谐振荡器的振动光谱和弛豫,以评估时间相关函数(TCF),响应函数和半经典频率调制(SFM)模型对红外(IR)计算的适用性光谱。这三种方法通常与分子动力学模拟结合使用,但未进行详细比较。我们还分析了振动能量弛豫(VER),它确定了线的形状,本身就是能量传输中的关键过程。 IR光谱和VER使用广义Langevin方程(GLE),高斯波包(GWP)方法和量子主方程(QME)计算。通过计算振动频率TCF,可以对模型的频率波动和相关时间进行详细分析。尽管通常高估了振动频率,但显示了由GLE通过谐波量子校正计算的IR光谱中的峰值幅度和宽度与QME的峰值幅度和宽度非常吻合。尽管红移稍微超过了QME参考值,但是GWP方法通过考虑零点能量和非谐性来改善峰位置。与基波跃迁相比,GWP在高频区域还会产生一个额外的峰值,该波峰是由波包的中心和宽度振荡的不同频率引起的。 SFM方法低估了红外光谱的峰值幅度,但很好地再现了峰值宽度。此外,讨论了VER速率对激励脉冲强度的依赖性。 ©2011美国物理研究所文章概要简介理论背景时间相关函数响应函数半经典频率调制模型模拟技术广义Langevin方程高斯波包方法时间局部量子主方程计算细节结果频率时间相关函数红外光谱峰位置峰振幅峰宽高斯波包方法中的非谐性额外峰半经典调频模型的运动变窄能量弛豫时间结束语

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