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Quasiparticle spectra and excitons of organic molecules deposited on substrates: G_0W_0-BSE approach applied to benzene on graphene and metallic substrates

机译:沉积在基板上的有机分子的准粒子光谱和激子:G_0W_0-BSE方法应用于石墨烯和金属基板上的苯

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摘要

We present an alternative methodology for caleulating the quasiparticle energy, energy loss, and optical spectra of a molecule deposited on graphene or a metallic substrate. To test the accuracy of the method it is first applied to the isolated benzene (C_6H_6,) molecule. The quasiparticle energy levels and especially the energies of the benzene excitons (triplet, singlet, optically active and inactive) are in very good agreement with available experimental results. It is shown that the vicinity of the various substrates [pristine/doped graphene or (jellium) metal surface] reduces the quasiparticle highest occupied molecular orbital-lowest unoccupied molecular orbital (HOMO-LUMO) gap by an amount that slightly depends on the substrate type. This is consistent with the simple image theory predictions. It is even shown that the substrate does not change the energy of the excitons in the isolated molecule. We prove (in terms of simple image theory) that energies of the exeitons are indeed influenced by two mechanisms which cancel each other. We demonstrate that the benzene singlet optically active (E_(1u)) exciton couples to real electronic excitations in the substrate. This causes it substantial decay, such as Γ≈ 174 meV for pristine graphene and Γ≈ 362 tneV lor metal surfaces as the substrate. However, we find that doping graphene does not influence the E_(1u), exciton decay rate.
机译:我们提出了一种替代的方法,用于计算沉积在石墨烯或金属基材上的分子的准粒子能量,能量损失和光谱。为了测试该方法的准确性,首先将其应用于分离的苯(C_6H_6,)分子。准粒子能级,尤其是苯激子的能级(三重态,单重态,旋光性和非活性性)与可获得的实验结果非常吻合。结果表明,各种基质[原始/掺杂的石墨烯或(镓)金属表面]的附近使准颗粒最高占据分子轨道-最低未占据分子轨道(HOMO-LUMO)的间隙减小了略微取决于基质类型的量。这与简单的图像理论预测是一致的。甚至表明底物不改变分离的分子中激子的能量。我们证明(根据简单的图像理论),激发子的能量确实受到两个相互抵消的机制的影响。我们证明了苯单重态光学活性(E_(1u))激子耦合到衬底中的真实电子激发。这会导致其大量衰减,例如原始石墨烯的Γ≈174 meV,金属表面的Γ≈362 tneV。但是,我们发现掺杂石墨烯不会影响E_(1u)激子衰减率。

著录项

  • 来源
    《Physical review》 |2013年第23期|235437.1-235437.16|共16页
  • 作者单位

    Department of Physics, University of Zagreb, Bijenicka 32, HR-10000 Zagreb, Croatia,Donostia International Physics Center, Paseo de Manuel de Lardizahal 4, ES-20018 San Sebastian, Spain;

    Department of Physics, University of Zagreb, Bijenicka 32, HR-10000 Zagreb, Croatia;

    Donostia International Physics Center, Paseo de Manuel de Lardizahal 4, ES-20018 San Sebastian, Spain,Nano-Bio Spectroscopy Group and ETSF Scientific Development Center, Departamento de Fisica de Materiales, Universidad del Pais Vasco UPV/EHU, ES-20018 San Sebastian, Spain;

    Maritime Department, University of Zadar, M. Pavlinovica b.b., HR-23000 Zadar, Croatia;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    collective excitations;

    机译:集体激励;

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