Emergence of Landauer Transport from Quantum Dynamics: A Model Hamiltonian Approach
Partha Pratim Pal, S. Ramakrishna, Tamar Seideman

TL;DR
This paper develops a general time-dependent current expression for nanoscale devices using quantum dynamics, demonstrating how Landauer transport emerges from first-principles calculations and analyzing factors influencing its onset.
Contribution
It introduces a model Hamiltonian approach to derive a time-dependent current formula and shows how Landauer transport naturally arises from quantum dynamics without prior assumptions.
Findings
Derived a general expression for time-dependent current in nanoscale systems.
Showed Landauer transport emerges after charge flow reaches steady state.
Compared model performance with traditional Landauer current and discussed hot-electron effects.
Abstract
The Landauer expression for computing current-voltage characteristics in nanoscale devices is efficient and widely applicable but not suited to transient phenomena and time dependent currents because it assumes that the charge carrier population attains a time independent dynamic equilibrium as soon as the external voltage is turned on. In this article, we construct a very general expression for a time dependent current in an electrode-molecule-electrode arrangement. Utilizing a model Hamiltonian, we propagate the Schrodinger wave function equation to numerically compute the time dependent population in the individual sub-systems. The current in each electrode (defined in terms of the rate of change of the corresponding population) has two components, one due to the charges originating from the same electrode and the other due to the charges initially residing at the other electrode. We…
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