Pseudomode treatment of strong-coupling quantum thermodynamics
Francesco Albarelli, Bassano Vacchini, Andrea Smirne

TL;DR
This paper introduces a pseudomode approach to efficiently evaluate thermodynamic quantities in strong-coupling quantum systems, enabling nonperturbative analysis with reduced computational complexity.
Contribution
It develops a pseudomode-based method to compute heat, work, and entropy production in strongly coupled quantum thermodynamics, bypassing heavy numerical simulations.
Findings
Efficient numerical evaluation of thermodynamic quantities using pseudomodes.
Analysis of entropy production in driven two-level systems coupled to baths.
Demonstration of work extraction via modulated coupling in a quantum thermal machine.
Abstract
The treatment of quantum thermodynamic systems beyond weak coupling is of increasing relevance, yet extremely challenging. The evaluation of thermodynamic quantities in strong-coupling regimes requires a nonperturbative knowledge of the bath dynamics, which in turn relies on heavy numerical simulations. To tame these difficulties, considering thermal bosonic baths linearly coupled to the open system, we derive expressions for heat, work, and average system-bath interaction energy that only involve the autocorrelation function of the bath and two-time expectation values of system operators. We then exploit the pseudomode approach, which replaces the physical continuous bosonic bath with a small finite number of damped, possibly interacting, modes, to numerically evaluate these relevant thermodynamic quantities. We show in particular that this method allows for an efficient numerical…
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Taxonomy
TopicsAdvanced Thermodynamics and Statistical Mechanics · Spectroscopy and Quantum Chemical Studies · Quantum, superfluid, helium dynamics
