The self-energy term used in transport calculations, which describes the coupling between electrode and transition regions, is able to be evaluated only from a limited number of the propagating and evanescent waves of a bulk electrode. This obviously contributes toward the reduction of the computational expenses in transport calculations. In this paper, we present a mathematical formula for reducing the computational expenses further without using any approximation and without losing accuracy. So far, the self-energy term has been handled as a matrix with the same dimension as the Hamiltonian submatrix representing the interaction between an electrode and a transition region. In this work, through the singular-value decomposition of the sub...
The following article appeared in Journal of Chemical Physics 134.4 (2011): 044118 and may be found ...
A local-orbital based {\it ab initio} approach to obtain the Green function for large heterogeneous ...
Controlling charge transport through molecules is challenging because it requires engineering of the...
The computational cost of calculating the self-energy matrices used in first-principles transport-pr...
Electronic transmission through a metal-molecule-metal system is calculated by employing a Green’s f...
We demonstrate an efficient nonequilibrium Green\u27s function transport calculation procedure based...
We propose an efficient computational method for evaluating the self-energy matrices of electrodes t...
We present a fast and stable numerical technique to obtain the self-energy terms of electrodes for f...
Controlling charge transport through molecules is challenging because it requires engineering of the...
One means for describing electron transport across single molecule tunnel junctions (MTJs) is to use...
One means for describing electron transport across single molecule tunnel junctions (MTJs) is to use...
The study of electron transfer through individual molecules bound to metal electrodes has become imp...
One means for describing electron transport across single molecule tunnel junctions (MTJs) is to use...
We present a transport model for molecular conduction involving an extended Hückel theoretical treat...
We present a transport model for molecular conduction involving an extended Hückel theoretical treat...
The following article appeared in Journal of Chemical Physics 134.4 (2011): 044118 and may be found ...
A local-orbital based {\it ab initio} approach to obtain the Green function for large heterogeneous ...
Controlling charge transport through molecules is challenging because it requires engineering of the...
The computational cost of calculating the self-energy matrices used in first-principles transport-pr...
Electronic transmission through a metal-molecule-metal system is calculated by employing a Green’s f...
We demonstrate an efficient nonequilibrium Green\u27s function transport calculation procedure based...
We propose an efficient computational method for evaluating the self-energy matrices of electrodes t...
We present a fast and stable numerical technique to obtain the self-energy terms of electrodes for f...
Controlling charge transport through molecules is challenging because it requires engineering of the...
One means for describing electron transport across single molecule tunnel junctions (MTJs) is to use...
One means for describing electron transport across single molecule tunnel junctions (MTJs) is to use...
The study of electron transfer through individual molecules bound to metal electrodes has become imp...
One means for describing electron transport across single molecule tunnel junctions (MTJs) is to use...
We present a transport model for molecular conduction involving an extended Hückel theoretical treat...
We present a transport model for molecular conduction involving an extended Hückel theoretical treat...
The following article appeared in Journal of Chemical Physics 134.4 (2011): 044118 and may be found ...
A local-orbital based {\it ab initio} approach to obtain the Green function for large heterogeneous ...
Controlling charge transport through molecules is challenging because it requires engineering of the...