Information travels in massless fields in 1+1 dimensions where energy cannot
arXiv:1512.05065 · doi:10.1088/1751-8113/49/44/445402
Abstract
It has been demonstrated that, in (1+1) spacetime dimensions, massless fields can be used for information transmission even between parties that are time-like rather than light-like separated - and even without the receiver obtaining any energy from the sender. Here, it is shown that this phenomenon is not limited to a particular model of signaling device, but is based on general properties of the quantum field: energy propagates strictly only on the lightcone, whereas perturbations to the field amplitude, which can carry information, permeate also the inside of the future lightcone of the sender. It is also shown that this timelike and energyless signaling in massless fields occurs in Dirichlet cavities, which shows that the phenomenon is not confined to setups with a zero mode. Moreover, it is shown that the phenomenon extends beyond perturbation theory, namely by deriving the phenomenon non-perturbatively for the case where the sender and receiver systems are modelled as harmonic oscillators. To illustrate the propagation of energy in massless fields, the energy density is calculated that results from temporarily coupling an Unruh-DeWitt detector at rest to the vacuum of the field.
v2: extended Section VI (and added Appendices) on harmonic oscillators inside cavity v3: published version
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- Transmission of quantum information through quantum fields
- Communication through quantum fields near a black hole
- Transmitting qubits through relativistic fields
- Localized non-relativistic quantum systems in curved spacetimes: a general characterization of particle detector models
- Harvesting entanglement from the gravitational vacuum
- The geometry of spacetime from quantum measurements
- Quantum Signaling in Relativistic Motion and Across Acceleration Horizons
- Minimal energy cost of entanglement extraction
- Relativistic Quantum Communication: Energy cost and channel capacities
- Interaction-Free Effects Between Distant Atoms
- Ambient temperature versus ambient acceleration in the circular motion Unruh effect
- The role of quantum degrees of freedom of relativistic fields in quantum information protocols
- Duality in the dynamics of Unruh-DeWitt detectors in conformally related spacetimes
- Transmission of Information in Non-Local Field Theories
- Entanglement harvesting: detector gap and field mass optimization