Decoherence by warm horizons
arXiv:2405.00804 · doi:10.1103/PhysRevD.110.045002
Abstract
Recently Danielson, Satishchandran, and Wald (DSW) have shown that quantum superpositions held outside of Killing horizons will decohere at a steady rate. This occurs because of the inevitable radiation of soft photons (gravitons), which imprint a electromagnetic (gravitational) ``which-path'' memory onto the horizon. Rather than appealing to this global description, an experimenter ought to also have a local description for the cause of decoherence. One might intuitively guess that this is just the bombardment of Hawking/Unruh radiation on the system, however simple calculations challenge this idea -- the same superposition held in a finite temperature inertial laboratory does not decohere at the DSW rate. In this work we provide a local description of the decoherence by mapping the DSW set-up onto a worldline-localized model resembling an Unruh-DeWitt particle detector. We present an interpretation in terms of random local forces which do not sufficiently self-average over long times. Using the Rindler horizon as a concrete example we clarify the crucial role of temperature, and show that the Unruh effect is the only quantum mechanical effect underlying these random forces. A general lesson is that for an environment which induces Ohmic friction on the central system (as one gets from the classical Abraham-Lorentz-Dirac force, in an accelerating frame) the fluctuation-dissipation theorem implies that when this environment is at finite temperature it will cause steady decoherence on the central system. Our results agree with DSW and provide the complementary local perspective.
19 pages, 3 figures (corrected minor typos and added refs)
References in corpus (17)
- An Effective Field Theory of Gravity for Extended Objects
- Gravitational radiative corrections from effective field theory
- Gravitationally Mediated Entanglement: Newtonian Field vs. Gravitons
- Multipole expansion at the level of the action
- Accelerated Detector - Quantum Field Correlations: From Vacuum Fluctuations to Radiation Flux
- Gravitational decoherence
- Electromagnetic and gravitational self-force on a relativistic particle from quantum fields in curved space
- Killing Horizons Decohere Quantum Superpositions
- Probing the Unruh effect with an accelerated extended system
- An Effective Field Theory of Quantum Mechanical Black Hole Horizons
- Stochastic Analysis of an Accelerated Charged Particle -Transverse Fluctuations-
- Virtual Hawking Radiation
- Decoherence as Detector of the Unruh Effect
- Quantum radiation produced by the entanglement of quantum fields
- Decoherence and thermalization of Unruh-DeWitt detector in arbitrary dimensions
- A functional approach to soft graviton scattering and BMS charges
- Quantum radiation from a particle in an accelerated motion coupled to vacuum fluctuations
Cited by in corpus (10)
- Local Description of Decoherence of Quantum Superpositions by Black Holes and Other Bodies
- Does decoherence violate decoupling?
- Entanglement Harvesting and Quantum Discord of Alpha Vacua in de Sitter Space
- How to Minimize the Decoherence Caused by Black Holes
- The Role of Quantum Measurements when Testing the Quantum Nature of Gravity
- Decoherence of spin superposition state caused by a quantum electromagnetic field
- Thermality and athermality in the Unruh effect
- Horizon quantum geometries and decoherence
- Effects of quantum geometry on the decoherence induced by black holes
- Gravitational waves decohere quantum superpositions