Disjointness of inertial KMS states and the role of Lorentz symmetry in thermalization
arXiv:2402.14794 · doi:10.1142/S0129055X24300097
Abstract
For any local, translation-covariant quantum field theory on Minkowski spacetime, we prove that two distinct states that are invariant under the inertial time evolutions in different inertial reference frames are disjoint, i.e. neither state is a perturbation of the other, if the states are primary, have separating Gelfand-Naimark-Segal (GNS) vectors, and satisfy a timelike cluster property called the mixing property. These conditions are fulfilled by the inertial Kubo-Martin-Schwinger (KMS) states of the free scalar field, thus showing that a state satisfying the KMS condition relative to one inertial frame is far from thermal equilibrium relative to other inertial frames. We review the property of return to equilibrium (RTE) in open quantum systems theory and discuss the implications of disjointness on the asymptotic behavior of detector systems coupled to states of a free massless scalar field. We argue that the coupled system of an Unruh-DeWitt detector moving with constant velocity relative to the field in a KMS state, or an excitation thereof, cannot thermalize under generic conditions. This leads to an illustration of the physical differences between heat baths in inertial systems and the alleged "heat bath" of the Unruh effect. This paper also sketches the construction and RTE property of the quantum dynamical system of an Unruh-DeWitt detector coupled to a massless scalar field in a KMS state relative to the inertial rest frame of the detector.
65 pages; dedicated to Detlev Buchholz on the occasion of his 80th birthday. v2: Revised and extended (added explanations and references, restructured Sec. 3.3, added affiliation). Matches published version up to formatting
References in corpus (23)
- The Unruh effect and its applications
- Open quantum system dynamics and the mean force Gibbs state
- Notes on the type classification of von Neumann algebras
- A detector-based measurement theory for quantum field theory
- Another Return of 'Return to Equilibrium'
- Non-Markovian time evolution of an accelerated qubit
- Resonance Theory of Decoherence and Thermalization
- Unruh-DeWitt detector's response to fermions in flat spacetimes
- Theory of Non-Equilibrium Sationary States as a Theory of Resonances
- Local Thermal Equilibrium States and Quantum Energy Inequalities
- Dynamics of Open Quantum Systems II, Markovian Approximation
- On the Question of Temperature Transformations under Lorentz and Galilei Boosts
- Inversion of statistics and thermalization in the Unruh effect
- Thermal equilibrium states of a linear scalar quantum field in stationary spacetimes
- Particle Detectors from Localized Quantum Field Theories
- Ambient temperature versus ambient acceleration in the circular motion Unruh effect
- Ergodicity of the Spin-Boson Model for arbitrary coupling strength
- General features of the thermalization of particle detectors and the Unruh effect
- Unruh phenomena and thermalization for qudit detectors
- Local Thermal Equilibrium in Quantum Field Theory on Flat and Curved Spacetimes
- Particle detector models from path integrals of localized quantum fields
- The Unruh-DeWitt model and its joint interacting Hilbert space
- Uniformly accelerated Brownian oscillator in (2+1)D: temperature-dependent dissipation and frequency shift