Coulomb Gas on the Keldysh Contour: Anderson-Yuval-Hamann representation of the Nonequilibrium Two Level System
Aditi Mitra, Andrew J. Millis

TL;DR
This paper develops a nonequilibrium Coulomb gas model on the Keldysh contour to analyze a two-level system coupled to electronic reservoirs, revealing how dephasing and decoherence influence phase transitions.
Contribution
It introduces a novel Anderson-Yuval-Hamann mapping for nonequilibrium systems and defines a renormalization group approach incorporating decoherence effects.
Findings
Decoherence rate acts as an additive renormalized coupling.
Dephasing induces formation of independent resonances.
Departures from equilibrium affect the localization-delocalization transition.
Abstract
The nonequilibrium tunnelling center model of a localized electronic level coupled to a fluctuating two-state system and to two electronic reservoirs, is solved via an Anderson-Yuval-Hamann mapping onto a plasma of alternating positive and negative charges time-ordered along the two "Keldysh" contours needed to describe nonequilibrium physics. The interaction between charges depends both on whether their time separation is small or large compared to a dephasing scale defined in terms of the chemical potential difference between the electronic reservoirs and on whether their time separation is larger or smaller than a decoherence scale defined in terms of the current flowing from one reservoir to another. A renormalization group transformation appropriate to the nonequilibrium problem is defined. An important feature is the presence in the model of a new coupling, essentially the…
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