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首页> 外文期刊>International Journal of Quantum Chemistry >Generalized Time-Dependent Approaches to Vibrationally Resolved Electronic and Raman Spectra: Theory and Applications
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Generalized Time-Dependent Approaches to Vibrationally Resolved Electronic and Raman Spectra: Theory and Applications

机译:振动分辨电子和拉曼光谱的广义时变方法:理论与应用

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In this review, we summarize the computationally efficient time-dependent approaches to calculating the vibronic spectra including one-photon/two-photon absorption (OPA/TPA), emission, circular dichroism (CD), and resonance Raman/hyper-Raman scattering (RRS/RHRS) spectra with inclusion of the mode-mixing, Frank-Condon (FC) and Herzberg-Teller (HT) effects. At first, a unified dependency of spectral differential cross sections (SDCSs) on a generalized linear polarizability is derived in view of the relationship between SDCSs and the linear or nonlinear polarizabilities. Then, the Green's function technique is adopted to calculate the polarizability to avoid the tedious summation over the large number of vibrational states. To demonstrate the computational accuracy and efficiency, we apply the generalized time-dependent approaches to calculate the OPA(E)/TPA, RRS, and RHRS spectra of a series of radicals and organic molecules. The computational accuracy is demonstrated by a close comparison between the simulated spectra and the available experimental data. In the spectral calculations, we apply our recently developed analytical energy-derivative approaches for the excited states within the framework of time-dependent density functional theory (TDDFT) to calculate the electronic-structure parameters which enter the expressions of SDCSs, such as the excited-state geometries, energy gradient, harmonic vibrational frequencies, the geometrical derivatives of transition dipole moments, and so forth. It is found that the integrated approach which combines the time-dependent approach to SDCSs with the analytical energy-derivative approaches for TDDFT excited-state structure parameters breaks the bottlenecks of vibronic spectroscopy calculation down. (c) 2014 Wiley Periodicals, Inc.
机译:在这篇综述中,我们总结了计算有效的时变方法来计算振动光谱,包括一光子/两光子吸收(OPA / TPA),发射,圆二色性(CD)和共振拉曼/超拉曼散射( RRS / RHRS)光谱,包括模式混合,Frank-Condon(FC)和Herzberg-Teller(HT)效应。首先,鉴于SDCS与线性或非线性极化率之间的关系,得出了光谱差分截面(SDCS)对广义线性极化率的统一依赖性。然后,采用格林函数技术来计算极化率,以避免对大量振动状态进行繁琐的求和。为了证明计算的准确性和效率,我们应用广义的时变方法来计算一系列自由基和有机分子的OPA(E)/ TPA,RRS和RHRS光谱。通过精确比较模拟光谱和可用的实验数据来证明计算精度。在光谱计算中,我们在依赖于时间的密度泛函理论(TDDFT)的框架内,将我们最近开发的分析能导方法应用于激发态,以计算输入SDCSs表达式的电子结构参数,例如激发态状态几何,能量梯度,谐波振动频率,跃迁偶极矩的几何导数等。结果发现,将SDCSs的时变方法与TDDFT激发态结构参数的解析能量导数方法相结合的集成方法可以打破电子光谱法计算的瓶颈。 (c)2014年威利期刊有限公司

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