Department of Physics, Applied Physics, and Astronomy, Rensselaer Polytechnic Institute, Troy, New York 12180, USA.
ACS Nano. 2012 Dec 21;6(12):10449-55. doi: 10.1021/nn303950b. Epub 2012 Oct 24.
Using a first-principles density functional method, we have studied the electronic structure, electron-phonon coupling, and quantum transport properties of atomic wires of Ag, Al, Au, and Cu. Non-equilibrium Green's function-based transport studies of finite atomic wires suggest that the conductivity of Al atomic wires is higher than that of Ag, Au, and Cu in contrast to the bulk where Al has the lowest conductivity among these systems. This is attributed to the higher number of eigenchannels in Al wires, which becomes the determining factor in the ballistic limit. On the basis of density functional perturbation theory, we find that the electron-phonon coupling constant of the Al atomic wire is lowest among the four metals studied, and more importantly, that the value is reduced by a factor of 50 compared to the bulk.
我们使用第一性原理密度泛函方法研究了 Ag、Al、Au 和 Cu 原子线的电子结构、电子-声子耦合和量子输运性质。基于非平衡格林函数的有限原子线输运研究表明,与体材料相反,Al 原子线的电导率高于 Ag、Au 和 Cu,而在体材料中 Al 的电导率在这些体系中最低。这归因于 Al 线中的本征通道数量更多,这成为弹道极限的决定因素。基于密度泛函微扰理论,我们发现 Al 原子线的电子-声子耦合常数在研究的四种金属中最低,更重要的是,与体材料相比,该值降低了 50 倍。