2,2 ' -二噻吩构象的二次谐波产生、电光波克尔效应和静态一阶超极化:HF、MP2和DFT理论研究

A. Alparone
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引用次数: 16

摘要

计算了2,2′-二噻吩平衡构象(反间扭式和顺间扭式)的静态和动态电子(超)极化率。计算采用Hartree-Fock (HF)、Møller-Plesset二阶微扰理论(MP2)和密度泛函理论方法。研究了Nd:YAG激光器在典型nm处的二次谐波产生(SHG)和电光波克尔效应(EOPE)非线性光学过程的特性。二面角为137°(MP2/6-311G**)的反间扭式在势能表面上是全局最小的,而同步间扭式转子(= 48°,MP2/6-311G**)比反间扭式高约0.5 kcal/mol。间扭结构的结构性质非常相似。MP2电子相关效应对2,2 ' -双噻吩的一阶超极化率有显著影响,使HF值降低约三倍。当从反间扭式构象过渡到同步间扭式构象时,静态和频率相关的一阶超极化率增加了约两倍。不同的是,这些转子的电子极化率和二阶超极化率非常接近。通过更强烈的SHG和EOPE信号,可以将其与反间扭结构区分开来。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Second Harmonic Generation, Electrooptical Pockels Effect, and Static First-Order Hyperpolarizabilities of 2,2′-Bithiophene Conformers: An HF, MP2, and DFT Theoretical Investigation
The static and dynamic electronic (hyper)polarizabilities of the equilibrium conformations of 2,2′-bithiophene (anti-gauche and syn-gauche) were computed in the gas phase. The calculations were carried out using Hartree-Fock (HF), Møller-Plesset second-order perturbation theory (MP2), and density functional theory methods. The properties were evaluated for the second harmonic generation (SHG), and electrooptical Pockels effect (EOPE) nonlinear optical processes at the typical nm of the Nd:YAG laser. The anti-gauche form characterized by the dihedral angle of 137° (MP2/6-311G**) is the global minimum on the potential energy surface, whereas the syn-gauche rotamer ( = 48°, MP2/6-311G**) lies ca. 0.5 kcal/mol above the anti-gauche form. The structural properties of the gauche structures are rather similar to each other. The MP2 electron correlation effects are dramatic for the first-order hyperpolarizabilities of the 2,2′-bithiophenes, decreasing the HF values by ca. a factor of three. When passing from the anti-gauche to the syn-gauche conformer, the static and frequency-dependent first-order hyperpolarizabilities increase by ca. a factor of two. Differently, the electronic polarizabilities and second-order hyperpolarizabilities of these rotamers are rather close to each other. The syn-gauche structure could be discriminated from the anti-gauche one through its much more intense SHG and EOPE signals.
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