Nonadiabatic Electron Dynamics in Tunneling Junctions: Lattice Exchange-Correlation Potential
Author(s) -
Fabio Covito,
Ángel Rubio,
F. G. Eich
Publication year - 2019
Publication title -
journal of chemical theory and computation
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.001
H-Index - 185
eISSN - 1549-9626
pISSN - 1549-9618
DOI - 10.1021/acs.jctc.9b00893
Subject(s) - adiabatic process , physics , quantum tunnelling , statistical physics , coulomb blockade , lattice (music) , density functional theory , coulomb , quantum , adiabatic theorem , local density approximation , electronic correlation , electron , quantum mechanics , voltage , transistor , acoustics
The search for exchange-correlation functionals going beyond the adiabatic approximation has always been a challenging task for time-dependent density-functional theory. Starting from known results and using symmetry properties, we put forward a nonadiabatic exchange-correlation functional for lattice models describing a generic transport setup. We show that this functional reduces to known results for a single quantum dot connected to one or two reservoirs and furthermore yields the adiabatic local-density approximation in the static limit. Finally, we analyze the features of the exchange-correlation potential and the physics it describes in a linear chain connected to two reservoirs where the transport is induced by a bias voltage applied to the reservoirs. We find that the Coulomb blockade is correctly described for a half-filled chain, while additional effects arise as the doping of the chain changes.
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