Archive/A Husimi Phase-Space Approach to a Driven–Dissipative Quantum Field at Finite Temperature
A Husimi Phase-Space Approach to a Driven–Dissipative Quantum Field at Finite Temperature
Marco A. García-Márquez, Irán Ramos-Prieto, Francisco Soto-Eguibar et al.
July 23, 2026
en

Abstract

We investigate the dynamics of a driven quantum field coupled to a finite-temperature reservoir. The corresponding master equation is solved using superoperator techniques, yielding an analytical expression for the density operator. To obtain a compact and physically transparent description of the dynamics, we adopt a phase-space representation based on the Husimi Q-function. For an initially coherent state, we derive a closed-form Gaussian expression for the Husimi Q-function whose stationary limit corresponds to a displaced thermal state. This approach also enables an analytical study of quantum-interference dynamics for an initial superposition of coherent states. Furthermore, we derive the corresponding Fokker–Planck equation for the Husimi Q-function and obtain closed-form expressions for relevant statistical quantities, including the mean photon number, the photon-number standard deviation, and the Mandel parameter. We also investigate the Wehrl and linear entropies, which quantify the loss of phase-space information and purity induced by the thermal environment. The framework provides a complete analytical characterization of the phase-space dynamics, photon statistics, and entropic properties of driven–dissipative quantum fields while avoiding the explicit manipulation of the density operator.

Keywords

husimiphase-spaceapproachdrivendissipativequantumfieldfinitetemperaturedynamicsinvestigatecoupledfinite-temperaturereservoircorrespondingmasterequationsolvedsuperoperatortechniquesyieldinganalyticalexpressiondensity
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