Motion and gravity effects in the precision of quantum clocks
arXiv:1409.4235 · doi:10.1038/srep10070
Abstract
We show that motion and gravity affect the precision of quantum clocks. We consider a localised quantum field as a fundamental model of a quantum clock moving in spacetime and show that its state is modified due to changes in acceleration. By computing the quantum Fisher information we determine how relativistic motion modifies the ultimate bound in the precision of the measurement of time. While in the absence of motion the squeezed vacuum is the ideal state for time estimation, we find that it is highly sensitive to the motion-induced degradation of the quantum Fisher information. We show that coherent states are generally more resilient to this degradation and that in the case of very low initial number of photons, the optimal precision can be even increased by motion. These results can be tested with current technology by using superconducting resonators with tunable boundary conditions.
10 pages, 6 figures. I. F. previously published as I. Fuentes-Guridi and I. Fuentes-Schuller
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Cited by in corpus (9)
- Advances in Space Quantum Communications
- Autonomous quantum clocks: does thermodynamics limit our ability to measure time?
- Gravity in the Quantum Lab
- Classical and Nonclassical Time Dilation for Quantum Clocks
- Superconducting circuit boundary conditions beyond the Dynamical Casimir Effect
- Relativistic quantum clocks
- Quantum and classical effects in a light-clock falling in Schwarzschild geometry
- Simulating moving cavities in superconducting circuits
- Quantum simulation of Rindler transformations