Shi X Q, Dai Z X, Zheng X H, Zeng Z
Key Laboratory of Materials Physics, Institute of Solid State Physics, Chinese Academy of Sciences, Hefei 230031, China.
J Phys Chem B. 2006 Aug 31;110(34):16902-7. doi: 10.1021/jp057396r.
We report first-principles calculations on the electrical transport properties of two kinds of one-dimensional nanowires: (a) a carbon nanowire (CNW) with alternating single and triple bonds and (b) a boron-nitrogen nanowire (BNNW) with equidistant bonds. We demonstrate the similarity and difference between the carbon nanowire and its boron-nitrogen analogue in the molecular orbital and transport properties, and then explore the potential innovations. The effects of molecular orbitals and nanowire-electrode coupling on the transport properties are analyzed. The cases of the nanowires sandwiched between both nanoscale and bulk electrodes are considered. It suggests that the characteristics of the transmission spectra and the current-voltage characteristics (I-V curves) are determined both by the electrodes and by the molecule as well as their coupling. In particular, the negative differential resistance (NDR) phenomenon is more apparent when the nanowires are positioned between two nanoscale electrodes. The tuning of the transport properties is also probed through the changes of nanowire-electrode separation and the inclusion of a gate voltage. These lead to dramatic variations in the equilibrium conductance, which can be understood from the shift and alignment of the molecular orbital relative to the Fermi level of the electrodes. In the analysis of the effects of nanowire-electrode separation, it shows that the equilibrium conductance has the same variation behavior as that of the projected density of states (PDOS) for CNW, while the localized molecular orbitals of BNNW result in its conductance varies differently from its PDOS. The different molecular orbital characteristics near the Fermi level of these two kinds of nanowires underlie their different transport properties.
(a)具有交替单键和三键的碳纳米线(CNW),以及(b)具有等距键的硼氮纳米线(BNNW)。我们展示了碳纳米线及其硼氮类似物在分子轨道和输运性质方面的异同,然后探索了潜在的创新点。分析了分子轨道和纳米线 - 电极耦合对输运性质的影响。考虑了纳米线夹在纳米尺度电极和体电极之间的情况。结果表明,透射光谱和电流 - 电压特性(I - V曲线)的特征既由电极决定,也由分子及其耦合决定。特别是,当纳米线位于两个纳米尺度电极之间时,负微分电阻(NDR)现象更为明显。还通过改变纳米线 - 电极间距和施加栅极电压来探究输运性质的调控。这些导致平衡电导发生显著变化,这可以从分子轨道相对于电极费米能级的移动和对齐来理解。在分析纳米线 - 电极间距的影响时,结果表明,对于CNW,平衡电导与投影态密度(PDOS)具有相同的变化行为,而BNNW的局域分子轨道导致其电导与其PDOS的变化不同。这两种纳米线在费米能级附近不同的分子轨道特征是它们不同输运性质的基础。