Quantum Parameter Estimation for Detectors in Constantly Accelerated Motion
arXiv:2503.11016 · doi:10.1103/txrh-jv73
Abstract
We analyze quantum parameter estimation by studying the dynamics of the quantum Fisher information (QFI) for two classes of parameters, acceleration and initial-state weight, in an Unruh-DeWitt detector undergoing four distinct noninertial motions: linear, cusped, catenary, and circular trajectories respectively. We assume that the detector is initialized in a pure superposition state with a weight parameter characterizing the probability of the detector occupying each state. Our results reveal that, over long evolution times, the QFI for the acceleration parameter converges to a nonnegative asymptotic value that depends sensitively on the trajectory, whereas the QFI for the weight parameter decays to zero as the system thermalizes. Importantly, for sufficiently large accelerations, one can attain the optimal precision in estimating the acceleration parameter within a finite interaction time, eliminating the need for infinitely long measurements. Comparing trajectories, we find that for small accelerations (relative to the detector's energy gap), linear motion yields the highest QFI for , while for large accelerations, circular motion becomes optimal for estimating . By contrast, circular motion offers the best precision for estimating acceleration itself in both the small- and large-acceleration regimes (the latter only at very long times). These contrasting behaviors of QFI across trajectories suggest a novel metrological protocol for inferring the underlying noninertial motion of a quantum probe.
21 pages, 5 figures
References in corpus (31)
- Advances in Quantum Metrology
- Quantum-enhanced measurements: beating the standard quantum limit
- Quantum metrology
- Quantum Fisher Information Flow in Non-Markovian Processes of Open Systems
- Optimal Quantum Phase Estimation
- Fisher information under decoherence in Bloch representation
- How often does the Unruh-DeWitt detector click? Regularisation by a spatial profile
- Optimal quantum estimation of the Unruh-Hawking effect
- Quantum Metrology with Indefinite Causal Order
- Then again, how often does the Unruh-DeWitt detector click if we switch it carefully?
- Phonon creation by gravitational waves
- Quantum fisher information in noninertial frames
- Quantum metrology for relativistic quantum fields
- Relativistic Quantum Metrology: Exploiting relativity to improve quantum measurement technologies
- Uncertainty Principle and Quantum Fisher Information - II
- Quantum estimation of the Schwarzschild space-time parameters of the Earth
- Relativistic Quantum Metrology in Open System Dynamics
- Entanglement harvesting for Unruh-DeWitt detectors in circular motion
- Non-Markovian time evolution of an accelerated qubit
- Quantum metrology and estimation of Unruh effect
- Parameter estimation using NOON states over a relativistic quantum channel
- Hot Accelerated Qubits: Decoherence, Thermalization, Secular Growth and Reliable Late-time Predictions
- Parameter estimation with cluster states
- Parameter estimation for an expanding universe
- Interaction of a Bose-Einstein condensate with a gravitational wave
- Electromagnetic shielding in quantum metrology
- Unruh-like effects: Effective temperatures along stationary worldlines
- Bose-Einstein Condensates as Gravitational Wave Detectors
- Fisher information as a probe of spacetime structure: Relativistic quantum metrology in (A)dS
- Fisher Information of a Black Hole Spacetime
- Quantum Parameter Estimation in the Unruh-DeWitt detector model