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Exploring the effect of metal electrodes and the transport properties of 4,4'-Di-prop-1-ynyl-biphenyl molecular nanowire using quantum chemical calculation and charge density study

机译:使用量子化学计算和电荷密度研究探讨金属电极的效果和4,4'-二丙-1-炔基 - 联烯基分子纳米线的效果

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摘要

A theoretical charge density analysis has been carried out on the organic molecular nanowire 4,4'-Di-prop-1-ynyl-biphenyl (DPBP) using density functional theory (DFT) with the LANL2DZ basis set coupled with the Bader's theory of atoms in molecules to understand the effect of Au and Pt metal atoms and the external electric field in the molecule. Introduction of Au and Pt atoms in the molecule significantly altered the geometry and the charge density distribution of the molecule. The bond topological analysis of the molecule reveals that, the AuS and PtS bonds exhibit positive Laplacian of electron density [? 2ρ bcp(r)] indicates the existence of closed-shell interaction between the metal and the thiol atoms i.e. the non-covalent interaction. The applied electric field changes the conformation as well as the electronic energy levels of molecule rigorously; presumably, this effect may enhance the conductivity of the molecule. Further, the field reduces the HOMO-LUMO gap of Au and thiol substituted DPBP molecule appreciably from -1.8 to -0.7eV; this variation well indicates that, as the field increases, the HOMO and LUMO levels are approach each other. Whereas, in the Pt attached molecule, there is no such kind of features were found for the applied field. The current-voltage characteristics of DPBP molecule has been calculated theoretically using Landaure formalism. The conductivity of Pt substituted DPBP molecule is notably higher than Au substituted molecule.
机译:使用密度泛函理论(DFT)在有机分子纳米线4,4'-DI-PROP-1-炔基 - 联苯(DPBP)上进行了理论电荷密度分析,使用密度泛函理论(DFT)与LANL2DZ基准组件与庞大的原子理论相结合在分子中以了解Au和Pt金属原子的作用和分子中的外部电场。分子中的Au和Pt原子的引入显着改变了分子的几何形状和电荷密度分布。分子的键拓扑分析显示,AUS和PTS键合出了电子密度的阳性拉普拉斯[? 2ρbcp(r)]表示金属和硫醇原子之间的闭壳相互作用,即非共价相互作用。所施加的电场严格地改变了构象以及分子的电子能量水平;据推测,这种效果可以增强分子的电导率。此外,该场从-1.8至-0.7EV显着降低了Au和硫醇取代的DPBP分子的同型LumO-LumO间隙;这种变化很好地表明,随着场的增加,HOMO和LUMO水平彼此接近。虽然,在PT附加的分子中,没有找到所施加的场的这种特征。 DPBP分子的电流电压特性在理论上已经使用阵控形式主义计算。 Pt取代的DPBP分子的电导率显着高于Au取代的分子。

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