Departments of Chemistry and Physics, University of California, Irvine, California 92697, USA.
Beilstein J Nanotechnol. 2012;3:40-51. doi: 10.3762/bjnano.3.5. Epub 2012 Jan 16.
The transport through a quantum-scale device may be uniquely characterized by its transmission eigenvalues τ(n). Recently, highly conductive single-molecule junctions (SMJ) with multiple transport channels (i.e., several τ(n) > 0) have been formed from benzene molecules between Pt electrodes. Transport through these multichannel SMJs is a probe of both the bonding properties at the lead-molecule interface and of the molecular symmetry.
We use a many-body theory that properly describes the complementary wave-particle nature of the electron to investigate transport in an ensemble of Pt-benzene-Pt junctions. We utilize an effective-field theory of interacting π-electrons to accurately model the electrostatic influence of the leads, and we develop an ab initio tunneling model to describe the details of the lead-molecule bonding over an ensemble of junction geometries. We also develop a simple decomposition of transmission eigenchannels into molecular resonances based on the isolated resonance approximation, which helps to illustrate the workings of our many-body theory, and facilitates unambiguous interpretation of transmission spectra.
We confirm that Pt-benzene-Pt junctions have two dominant transmission channels, with only a small contribution from a third channel with τ(n) << 1. In addition, we demonstrate that the isolated resonance approximation is extremely accurate and determine that transport occurs predominantly via the HOMO orbital in Pt-benzene-Pt junctions. Finally, we show that the transport occurs in a lead-molecule coupling regime where the charge carriers are both particle-like and wave-like simultaneously, requiring a many-body description.
通过量子尺度设备的传输可能具有独特的特征,其传输特征值为τ(n)。最近,在 Pt 电极之间的苯分子中形成了具有多个传输通道(即多个 τ(n) > 0)的高导电性单分子结(SMJ)。通过这些多通道 SMJ 的传输是对键合性质在铅分子界面和分子对称性的探测。
我们使用了一种恰当描述电子互补波动-粒子性质的多体理论来研究 Pt-苯-Pt 结系综中的输运。我们利用相互作用的π电子的有效场理论来准确地模拟铅的静电影响,并且我们开发了一个从头算隧道模型来描述在结几何形状的系综中铅-分子键的细节。我们还开发了一种基于孤立共振近似的将传输本征通道分解为分子共振的简单分解,这有助于说明我们的多体理论的工作原理,并方便地对传输谱进行明确的解释。
我们证实 Pt-苯-Pt 结具有两个主要的传输通道,只有一小部分来自 τ(n) << 1 的第三个通道。此外,我们证明孤立共振近似是极其准确的,并确定在 Pt-苯-Pt 结中传输主要通过 HOMO 轨道发生。最后,我们表明传输发生在载流子同时具有粒子和波性质的铅-分子耦合范围内,需要多体描述。