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Theoretical investigation of molecular excited states in polar organic monolayers via an efficient embedding approach

机译:通过有效的嵌入方法对极性有机单分子层中分子激发态的理论研究

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摘要

In this work, we present a theoretical investigation on excitation energies of organic molecules embedded in a periodic monolayer. We use the self-consistent periodic-image-charges embedding approach, which takes into account all the electrostatic effects, to compute the perturbation on molecular orbitals and eigenvalues due to the presence of the surrounding periodic array of polar molecules. We considered vanadyl naphthalocyanine, mercaptobiphenyl, and tris-(8-hydroxyquinoline) aluminum (AlQ3) at different coverages, and excitation energies computed using the time-dependent density-functional theory. We found a significant (0.1–0.2 eV) red- or blue-shift of the energies for different excited states, due to the different coupling of the molecule with the polarization field of the two-dimensional crystal.
机译:在这项工作中,我们对嵌入在周期性单层中的有机分子的激发能进行了理论研究。我们使用自洽的周期图像电荷嵌入方法,该方法考虑了所有静电效应,以计算由于周围存在的极性分子周期阵列而对分子轨道和本征值产生的扰动。我们考虑了在不同覆盖率下的钒基萘酞菁,巯基联苯和三-(8-羟基喹啉)铝(AlQ3 ),并使用时变密度泛函理论计算了激发能。由于分子与二维晶体偏振场的耦合不同,我们发现在不同的激发态下,能量发生了显着的(0.1–0.2 eV)红移或蓝移。

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