Dissipative phase transitions in an open quantum Rabi model with two-photon processes
Phys. Rev. A 114, 033735 – Published 28 September, 2026
DOI: https://doi.org/10.1103/y58t-gvqy
Abstract
We demonstrate a mechanism driving complex critical phenomena in open light-atom interacting systems by investigating a parametrically amplified quantum Rabi model (QRM) subject to both single- and two-photon decay. In the classical oscillator limit, four composite phases emerge, arising from the possible normal or superradiant regimes across the upper and lower spin branches. A mean-field analysis reveals that the two-photon decay activates the intrinsic nonlinearity of the QRM. The synergy of the coherent and dissipative two-photon processes, together with the spin-boson coupling, constitutes an “inverted” regime where superradiance emerges exclusively at weak coupling. This regime features first- and second-order superradiant dissipative phase transitions (DPTs) separated by a tricritical point. Utilizing an adiabatic approach and the semi-classical Langevin formalism, we further study the steady-state structure beyond the mean-field level. The universality classes of the DPTs are identified, with the corresponding critical and finite-size scaling exponents derived and a scaling ansatz proposed to describe the critical behavior.