Image charge dynamics in time-dependent quantum transport
P. My\"oh\"anen, R. Tuovinen, T. Korhonen, G. Stefanucci, R. van, Leeuwen

TL;DR
This paper studies how electron-electron interactions between a molecule and metallic leads affect time-dependent quantum transport, revealing that correlations significantly influence transient and steady-state behaviors and spectral properties.
Contribution
It demonstrates that including correlations beyond mean-field approximations is essential for accurately modeling molecule-lead interactions in time-dependent transport.
Findings
Mean-field Hartree-Fock fails to capture polarization effects.
Correlations at second-Born or GW levels correct artifacts of HF.
Molecule-lead interactions alter spectral features and relaxation times.
Abstract
In this work we investigate the effects of the electron-electron interaction between a molecular junction and the metallic leads in time-dependent quantum transport. We employ the recently developed embedded Kadanoff-Baym method [Phys. Rev. B 80, 115107 (2009)] and show that the molecule-lead interaction changes substantially the transient and steady-state transport properties. We first show that the mean-field Hartree-Fock (HF) approximation does not capture the polarization effects responsible for the renormalization of the molecular levels neither in nor out of equilibrium. Furthermore, due to the time-local nature of the HF self-energy there exists a region in parameter space for which the system does not relax after the switch-on of a bias voltage. These and other artifacts of the HF approximation disappear when including correlations at the second-Born or GW levels. Both these…
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