Quantitative comparison of TDDFT-calculated HHG yields in ring-shaped organic molecules

Stephanie N. Armond, Kyle A. Hamer, Ravi Bhardwaj, Francois Mauger, Kenneth Lopata, Kenneth J. Schafer, Mette B. Gaarde
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Abstract

We compare the high-harmonic-generation (HHG) yield driven by a mid-infrared laser in three organic ring-shaped molecules, calculated using time-dependent density-functional theory (TDDFT). We average the yield over the relative orientation of the molecules and the linearly-polarized, 1825 nm driving laser pulse in order to compare to experimental spectra obtained by Alharbi et al., Phys. Rev. A 92, 041801 (2015). We find that the raw TDDFT-calculated HHG yield in cyclohexane (CHA) is strongly overestimated compared to those of benzene and cyclohexene, and that this can be attributed to unphysically large contributions from CHA orbitals lying well below the highest-occupied molecular orbital. We show that implementing a simple orbital-resolved scaling factor, which corrects the yield of the tunneling ionization contribution to the first step in the HHG process, leads to much better comparisons with experimental results. Our results are encouraging for the use of TDDFT in systematic computations of HHG in large molecules.
环形有机分子中 TDDFT 计算的 HHG 产量的定量比较
我们比较了三种有机环形分子在中波红外激光驱动下的高次谐波发生率(HHG),计算采用的是随时间变化的密度函数理论(TDDFT)。我们对分子的相对方向和线性偏振、1825 nm 驱动激光脉冲的产率进行了平均,以便与 Alharbi 等人获得的实验光谱进行比较,Phys. Rev. A 92, 041801 (2015)。我们发现,与苯和环己烯相比,TDDFT 计算出的环己烷 (CHA) 原始 HHG 产率被严重高估,而这可归因于 CHA 轨道远低于最高占位分子轨道的非物理大贡献。我们的研究表明,采用一个简单的轨道分辨缩放因子来校正 HHG 过程第一步的隧道电离贡献产率,可以更好地与实验结果进行比较。我们的结果对于将 TDDFT 用于大分子 HHG 的系统计算是令人鼓舞的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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