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Energy level alignment and quantum conductance of functionalized metal-molecule junctions: Density functional theory versus GW calculations

机译:功能化金属-分子结的能级排列和量子电导:密度泛函理论与GW计算

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摘要

We study the effect of functional groups (CH_3*4, OCH _3, CH_3, Cl, CN, F*4) on the electronic transport properties of 1,4-benzenediamine molecular junctions using the non-equilibrium Green function method. Exchange and correlation effects are included at various levels of theory, namely density functional theory (DFT), energy level-corrected DFT (DFT+Σ), Hartree-Fock and the many-body GW approximation. All methods reproduce the expected trends for the energy of the frontier orbitals according to the electron donating or withdrawing character of the substituent group. However, only the GW method predicts the correct ordering of the conductance amongst the molecules. The absolute GW (DFT) conductance is within a factor of two (three) of the experimental values. Correcting the DFT orbital energies by a simple physically motivated scissors operator, Σ, can bring the DFT conductances close to experiments, but does not improve on the relative ordering. We ascribe this to a too strong pinning of the molecular energy levels to the metal Fermi level by DFT which suppresses the variation in orbital energy with functional group.
机译:我们使用非平衡Green函数方法研究了官能团(CH_3 * 4,OCH _3,CH_3,Cl,CN,F * 4)对1,4-苯二胺分子结的电子输运性质的影响。交换和相关效应包括在理论的各个层次上,即密度泛函理论(DFT),能级校正的DFT(DFT +Σ),Hartree-Fock和多体GW近似。所有方法都根据取代基的给电子或吸电子特征,重现了对边界轨道能量的预期趋势。但是,只有GW方法可以预测分子之间电导的正确顺序。绝对GW(DFT)电导在实验值的二(三)倍之内。用简单的动剪刀操作器Σ校正DFT轨道能量可以使DFT电导接近实验,但不会改善相对排序。我们将其归因于DFT将分子能级固定到金属费米能级的作用太强,这抑制了轨道能随官能团的变化。

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