Quantum direct cause across the Cherenkov threshold in circuit QED
arXiv:2002.01627 · doi:10.1103/PhysRevA.102.042223
Abstract
We investigate the Cherenkov radiation triggered by qubit acceleration simulated by superconducting circuit. By analyzing the radiation probability, we confirm the existence of Cherenkov speed threshold, implying that simulating superluminal qubit motion is possible for such a scenario. A question immediately arises: Is such motion compatible with the causality principle? To address the question, we perform a causality test on the simulating system based on the recently developed notion of temporal quantum correlations, pseudo-density matrix and temporal quantum steering. The results suggest that single-mode approximation breaks down even when the system is restricted in weak coupling regime.
6 pages, 4 figures
References in corpus (11)
- QuTiP 2: A Python framework for the dynamics of open quantum systems
- Steering, Entanglement, Nonlocality, and the EPR Paradox
- Experimental criteria for steering and the Einstein-Podolsky-Rosen paradox
- Entanglement, EPR-correlations, Bell-nonlocality, and Steering
- Einstein-Podolsky-Rosen steering provides the advantage in entanglement-assisted subchannel discrimination with one-way measurements
- Tunable coupling in circuit quantum electrodynamics with a superconducting V-system
- Inferring causal structure: a quantum advantage
- A superconducting qubit with Purcell protection and tunable coupling
- Thermalization of particle detectors: The Unruh effect and its reverse
- Temporal Steering in Four Dimensions with applications to coupled qubits and magnetoreception
- Theory of Cherenkov radiation in periodic dielectric media: Emission spectrum