Dynamical Mean-Field Theory for Markovian Open Quantum Many-Body Systems
Orazio Scarlatella, Aashish A. Clerk, Rosario Fazio, Marco Schir\'o

TL;DR
This paper extends nonequilibrium bosonic DMFT to Markovian open quantum systems, enabling the study of dissipative many-body dynamics and phase transitions beyond traditional mean-field approaches.
Contribution
It introduces a non-perturbative impurity solver for bosonic systems with non-Markovian baths within DMFT, applied to driven-dissipative Bose-Hubbard models.
Findings
DMFT captures hopping-induced dissipative processes missed by Gutzwiller mean-field
Reveals phase boundary renormalization due to finite connectivity
Identifies a finite-frequency instability leading to oscillating order parameter
Abstract
Open quantum many body systems describe a number of experimental platforms relevant for quantum simulations, ranging from arrays of superconducting circuits to ultracold atoms in optical lattices. Their theoretical understanding is hampered by their large Hilbert space and by their intrinsic nonequilibrium nature, limiting the applicability of many traditional approaches. In this work we extend the nonequilibrium bosonic Dynamical Mean Field Theory (DMFT) to Markovian open quantum systems. Within DMFT, a Lindblad master equation describing a lattice of dissipative bosonic particles is mapped onto an impurity problem describing a single site embedded in its Markovian environment and coupled to a self-consistent field and to a non-Markovian bath, where the latter accounts for finite lattice connectivity corrections beyond Gutzwiller mean-field theory. We develop a non-perturbative…
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