Probing non-equilibrium steady states of the Klein-Gordon field with Unruh-DeWitt detectors
arXiv:2502.20328 · doi:10.1007/s00023-025-01618-3
Abstract
We calculate the transition rate of an Unruh-DeWitt detector coupled to a non-equilibrium steady state (NESS) of a free massless scalar field on four-dimensional Minkowski spacetime. Bringing two semi-infinite heat baths at different temperatures into thermal contact along a surface, the NESS arises at asymptotically late times as a stationary state that has modewise thermal properties and features a heat flow between the reservoirs. The detector couples linearly to the field by a monopole interaction, and it moves inertially along the axis of the NESS heat flow. We contrast the transition rate with the case of a detector that is coupled to an inertial thermal equilibrium state. The results illustrate that the monopole does not couple to the heat flow, causing the detector to only register kinematical effects. Hence dynamical features of the NESS are hidden from this detector model.
40 pages, several figures. v2: revised and extended, figures updated, references added. v3: revised and restructured, corrected signs in NESS two-point function (text and plots updated accordingly), main conclusions unchanged
References in corpus (13)
- The Unruh effect and its applications
- How often does the Unruh-DeWitt detector click? Regularisation by a spatial profile
- Then again, how often does the Unruh-DeWitt detector click if we switch it carefully?
- Entanglement negativity and entropy in non-equilibrium conformal field theory
- Unruh and analogue Unruh temperatures for circular motion in 3+1 and 2+1 dimensions
- Theory of Non-Equilibrium Sationary States as a Theory of Resonances
- Circular motion analogue Unruh effect in a thermal bath: Robbing from the rich and giving to the poor
- Unruh-like effects: Effective temperatures along stationary worldlines
- Relativistic Quantum Thermodynamics of Moving Systems
- On the Question of Temperature Transformations under Lorentz and Galilei Boosts
- Ambient temperature versus ambient acceleration in the circular motion Unruh effect
- Connecting the circular and drifted Rindler Unruh effects
- Disjointness of inertial KMS states and the role of Lorentz symmetry in thermalization