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通过第一性原理计算对低温和室温下低聚噻吩的吸收和发射光谱形状进行量子-经典计算。

Quantum-classical calculation of the absorption and emission spectral shapes of oligothiophenes at low and room temperature by first-principle calculations.

作者信息

Improta Roberto, Ferrer Francisco J Avila, Stendardo Emiliano, Santoro Fabrizio

机构信息

CNR-Consiglio Nazionale delle Ricerche, Istituto di Biostrutture Biommagini (IBB-CNR) Via Mezzocannone 16, I-80136, Napoli (Italy).

出版信息

Chemphyschem. 2014 Oct 20;15(15):3320-33. doi: 10.1002/cphc.201402323. Epub 2014 Aug 8.

DOI:10.1002/cphc.201402323
PMID:25110885
Abstract

We report a thorough computational characterization of the low- and room-temperature absorption and emission spectra of a series of oligothiophenes that contain between three and seven thiophene units. Our computational approach is based on time-dependent (TD) density functional calculations with the CAM-B3LYP functional. The effect of vibrations is included without resorting to any empirical parameters either at a fully quantum level or with a hybrid quantum-classical protocol. This latter approach is introduced to describe the relevant broadening effects in absorption at room temperature and is based on the partition of the vibrational modes into two sets: the inter-ring torsions treated at the anharmonic level in a classical way and the remaining modes described at the quantum level. The contribution of the quantum modes to the spectrum is computed by using a harmonic approximation, which accounts for Duschinsky mixing and changes in the vibrational frequencies associated with the electronic transition; a path-integral TD approach is adopted to account for the effect of temperature. The spectra simulated at low temperatures are in very good agreement with their experimental counterparts, which indicates that our calculations can quantitatively reproduce the effect of chain lengthening on the position and the shape of the spectra. Good agreement is also obtained at room temperature, for which we show that the classical description of the broadening, owing to the inter-ring torsions, reproduces the loss of the vibronic structure observed in the experiment and introduces only a slight overestimation of the spectral width.

摘要

我们报告了一系列含有三到七个噻吩单元的低聚噻吩在低温和室温下吸收光谱与发射光谱的详尽计算表征。我们的计算方法基于含时(TD)密度泛函理论计算以及CAM-B3LYP泛函。振动效应的考虑既不借助任何经验参数,无论是在完全量子水平上,还是采用混合量子-经典协议。引入后一种方法来描述室温下吸收中的相关展宽效应,该方法基于将振动模式划分为两组:以经典方式在非谐水平处理的环间扭转,以及在量子水平描述的其余模式。量子模式对光谱的贡献通过使用谐波近似来计算,该近似考虑了杜什金斯基混合以及与电子跃迁相关的振动频率变化;采用路径积分TD方法来考虑温度的影响。在低温下模拟的光谱与其实验对应物非常吻合,这表明我们的计算能够定量再现链长对光谱位置和形状的影响。在室温下也获得了良好的吻合,我们表明由于环间扭转导致的展宽的经典描述再现了实验中观察到的振动结构的丧失,并且仅略微高估了光谱宽度。

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