Department of Applied Physics and Applied Mathematics, Columbia University , 500 W. 120th Street, New York, New York 10027, United States.
Nano Lett. 2014 Feb 12;14(2):794-8. doi: 10.1021/nl404143v. Epub 2014 Jan 24.
We measure conductance and thermopower of single Au-4,4'-bipyridine-Au junctions in distinct low and high conductance binding geometries accessed by modulating the electrode separation. We use these data to determine the electronic energy level alignment and coupling strength for these junctions, which are known to conduct through the lowest unoccupied molecular orbital (LUMO). Contrary to intuition, we find that, in the high-conductance junction, the LUMO resonance energy is further away from the Au Fermi energy than in the low-conductance junction. However, the LUMO of the high-conducting junction is better coupled to the electrode. These results are in good quantitative agreement with self-energy corrected zero-bias density functional theory calculations. Our calculations show further that measurements of conductance and thermopower in amine-terminated oligophenyl-Au junctions, where conduction occurs through the highest occupied molecular orbitals, cannot be used to extract electronic parameters as their transmission functions do not follow a simple Lorentzian form.
我们通过调节电极间距来测量处于不同低电导和高电导结合构象的单个 Au-4,4'-联吡啶-Au 结的电导和热功率。我们利用这些数据来确定这些结的电子能级排列和耦合强度,众所周知,这些结通过最低未占据分子轨道(LUMO)进行传导。与直觉相反,我们发现,在高电导结中,LUMO 共振能量比低电导结更远离 Au 费米能级。然而,高电导结的 LUMO 与电极的耦合更好。这些结果与自能修正的零偏密度泛函理论计算非常吻合。我们的计算还表明,对于通过最高占据分子轨道进行传导的胺端聚苯-Au 结,电导和热功率的测量不能用于提取电子参数,因为它们的传输函数不遵循简单的洛伦兹形式。