Key Laboratory for the Physics and Chemistry of Nanodevices, Department of Electronics, Peking University, Beijing 100871, China.
School of Physics, AMBER and CRANN Institute, Trinity College, Dublin 2, Ireland.
J Chem Phys. 2017 Aug 7;147(5):054702. doi: 10.1063/1.4996745.
The atomic structure and electronic transport properties of two types of molecular junctions, in which a series of saturated and conjugated molecules are symmetrically connected to gold electrodes through methylsulfide groups, are investigated using the non-equilibrium Green's function formalism combined with density functional theory. Our calculations show that the low-bias junction conductance is determined by the electronic tunneling between the two Au-S donor-acceptor bonds formed at the molecule-electrode interfaces. For alkanes with 4, 6, and 8 carbon atoms in the chain, the Au-S bonds moderately couple with the σ-type frontier molecular orbitals of the alkane backbone and thus prefer to be coplanar with the alkane backbone in the junction. This results in an exponential decrease of the junction conductance as a function of the number of methylene groups. In contrast, the Au-S bonds couple strongly with the π-type orbitals of the 1,4'-bis(methylsulfide)benzene and 4,4'-bis(methylsulfide)biphenyl molecules and thus tend to be perpendicular to the neighboring benzene rings, leading to the rather large junction conductance. Our findings contribute to the understanding of the low-bias conducting mechanism and facilitate the design of molecular electronic devices with methylsulfide groups and gold electrodes.
使用非平衡格林函数理论结合密度泛函理论,研究了两类分子结的原子结构和电子输运性质,这两类分子结中,一系列饱和和共轭分子通过甲硫醚基团对称地连接到金电极上。我们的计算表明,低偏压结的电导取决于在分子-电极界面处形成的两个 Au-S 供体-受体键之间的电子隧道。对于链中具有 4、6 和 8 个碳原子的烷烃,Au-S 键与烷烃主链的 σ 型前线分子轨道适度耦合,因此在结中倾向于与烷烃主链共面。这导致结电导随亚甲基基团数量的增加呈指数衰减。相比之下,Au-S 键与 1,4'-双(甲硫醚)苯和 4,4'-双(甲硫醚)联苯分子的 π 型轨道强烈耦合,因此倾向于垂直于相邻的苯环,导致相当大的结电导。我们的发现有助于理解低偏压导电机制,并促进具有甲硫醚基团和金电极的分子电子器件的设计。