Broken Detailed Balance and Entropy Production in CPTP Quantum Brownian Motion
arXiv:2507.23322 · doi:10.1103/qqxn-qc4g
Abstract
We rigorously analyze the non-equilibrium thermodynamic behavior of various formulations of quantum Brownian motion (QBM) using the framework of stochastic thermodynamics. While the widely used Caldeira-Leggett master equation exhibits desirable thermodynamic features, such as the fulfilment of a detailed balance, it fails to ensure complete positivity. In contrast, several completely positive and trace-preserving (CPTP) extensions turn out to be thermodynamically controversial. We show that such extensions introduce anomalous phase-space structures that violate detailed balance at the steady state, leading to non-vanishing entropy production and effective non-equilibrium current of unclear physical origins. Our results highlight a fundamental tension between quantum consistency and thermodynamic equilibration in open quantum systems.
References in corpus (9)
- The Wigner Entropy Production Rate
- On the Energy Increase in Space-Collapse Models
- Hidden time-reversal symmetry, quantum detailed balance and exact solutions of driven-dissipative quantum systems
- Relaxation dynamics of a quantum Brownian particle in an ideal gas
- On the role of initial coherence in the spin phase-space entropy production rate
- Complete Positivity and Thermal Relaxation in Quadratic Quantum Master Equations
- Thermalization in open many-body systems and KMS detailed balance
- Characterizing the spontaneous collapse of a wavefunction through entropy production
- Non-equilibrium thermodynamics of gravitational objective-collapse models