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π-堆积分子链中的电子传输

Electron transport in a pi-stacking molecular chain.

作者信息

Geng W T, Oda Masato, Nara Jun, Kondo Hisashi, Ohno Takahisa

机构信息

School of Materials Science & Engineering, University of Science & Technology Beijing, Beijing, China.

出版信息

J Phys Chem B. 2008 Mar 13;112(10):2795-800. doi: 10.1021/jp0763533. Epub 2008 Feb 16.

Abstract

We have investigated the electronic structure and transport properties of a pi-stacking molecular chain which is covalently bonded to a H/Si(100) surface, using the first-principles density functional theory approach combined with Green's function method. The highest occupied molecular orbital (HOMO) dispersion is remarkably reduced, but remains noticeable ( approximately 0.1 eV), when a short pi-stacking styrene wire is cut from an infinitely long wire and sandwiched between metal electrodes. We find that the styrene chain's HOMO and lowest unoccupied molecular orbital (LUMO) states are not separated from Si, indicating that it does not work as a wire. By substituting -NO2 or -NH2 for the top -H of styrene, we are able to shift the position of the HOMO and LUMO with respect to the Fermi level. More importantly, we find that the HOMO of styrene-NH2 falls into the band gap of the substrate and is localized in the pi-stacking chain, which is what we need for a wire to be electrically separated from the substrate. The conductance of such an assembly is comparable to that of Au/benzene dithiolate/Au wire based on chemical bonding, and its tunability makes it a promising system for a molecular device.

摘要

我们采用第一性原理密度泛函理论方法结合格林函数方法,研究了共价键合到H/Si(100)表面的π-堆积分子链的电子结构和输运性质。当从无限长的π-堆积苯乙烯线中截取一段短线并夹在金属电极之间时,最高占据分子轨道(HOMO)色散显著降低,但仍很明显(约0.1 eV)。我们发现苯乙烯链的HOMO和最低未占据分子轨道(LUMO)态与Si没有分离,这表明它不能作为导线起作用。通过用-NO2或-NH2取代苯乙烯顶部的-H,我们能够相对于费米能级移动HOMO和LUMO的位置。更重要的是,我们发现苯乙烯-NH2的HOMO落入衬底的带隙中并局域在π-堆积链中,这是导线与衬底电分离所需要的。这种组件的电导与基于化学键合的Au/苯二硫醇盐/Au线相当,其可调性使其成为分子器件的一个有前途的系统。

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