Szepieniec Mark S, Greer James C
Tyndall National Institute, University College Cork, Lee Maltings, Dyke Parade, Cork T12 R5CP, Ireland.
Department of Electrical and Electronic Engineering, Nottingham Ningbo New Materials Institute, University of Nottingham Ningbo China, 199 Taikang East Road, Ningbo 315100, China.
J Chem Phys. 2020 Nov 7;153(17):174104. doi: 10.1063/5.0024567.
One means for describing electron transport across single molecule tunnel junctions (MTJs) is to use density functional theory (DFT) in conjunction with a nonequilibrium Green's function formalism. This description relies on interpreting solutions to the Kohn-Sham (KS) equations used to solve the DFT problem as quasiparticle (QP) states. Many practical DFT implementations suffer from electron self-interaction errors and an inability to treat charge image potentials for molecules near metal surfaces. For MTJs, the overall effect of these errors is typically manifested as an overestimation of electronic currents. Correcting KS energies for self-interaction and image potential errors results in MTJ current-voltage characteristics in close agreement with measured currents. An alternative transport approach foregoes a QP picture and solves for a many-electron wavefunction on the MTJ subject to open system boundary conditions. It is demonstrated that this many-electron method provides similar results to the corrected QP picture for electronic current. The analysis of these two distinct approaches is related through corrections to a junction's electronic structure beyond the KS energies for the case of a benzene diamine molecule bonded between two gold electrodes.
描述电子通过单分子隧道结(MTJ)传输的一种方法是将密度泛函理论(DFT)与非平衡格林函数形式相结合。这种描述依赖于将用于求解DFT问题的科恩-沈(KS)方程的解解释为准粒子(QP)态。许多实际的DFT实现都存在电子自相互作用误差以及无法处理金属表面附近分子的电荷镜像势的问题。对于MTJ,这些误差的总体影响通常表现为对电子电流的高估。校正自相互作用和镜像势误差的KS能量会导致MTJ的电流-电压特性与测量电流非常吻合。另一种传输方法放弃了QP图像,而是在开放系统边界条件下求解MTJ上的多电子波函数。结果表明,这种多电子方法对于电子电流给出了与校正后的QP图像相似的结果。对于连接在两个金电极之间的苯二胺分子的情况,通过对结的电子结构进行超出KS能量的校正,对这两种不同方法的分析联系了起来。