Relativistic quantum thermometry through a moving sensor
arXiv:2208.04431 · doi:10.1016/j.aop.2022.169172
Abstract
Using a two-level moving probe, we address the temperature estimation of a static thermal bath modeled by a massless scalar field prepared in a thermal state. Different couplings of the probe to the field are discussed under various scenarios. We find that the thermometry is completely unaffected by the Lamb shift of the energy levels. We take into account the roles of probe velocity, its initial preparation, and environmental control parameters for achieving optimal temperature estimation. We show that a practical technique can be utilized to implement such a quantum thermometry. Finally, exploiting the thermal sensor moving at high velocity to probe temperature within a multiparameter-estimation strategy, we demonstrate perfect supremacy of the joint estimation over the individual one.
References in corpus (26)
- Many-Body Physics with Ultracold Gases
- The Unruh effect and its applications
- Individual quantum probes for optimal thermometry
- Fisher information under decoherence in Bloch representation
- Optimal quantum estimation of the Unruh-Hawking effect
- In situ thermometry of a cold Fermi gas via dephasing impurities
- Relativistic Quantum Information in Detectors-Field Interactions
- Quantum bath refrigeration towards absolute zero: unattainability principle challenged
- Qubit-assisted thermometry of a quantum harmonic oscillator
- Optimal Scheme for Quantum Metrology
- Global Quantum Thermometry
- Exact non-Markovian cavity dynamics strongly coupled to a reservoir
- Two-qubit quantum probes for the temperature of an Ohmic environment
- Optimal Probes for Global Quantum Thermometry
- Non-Markovian time evolution of an accelerated qubit
- Optimal Quantum Thermometry with Coarse-grained Measurements
- Tight bound on finite-resolution quantum thermometry at low temperatures
- Bath-Induced Correlations Enhance Thermometry Precision at Low Temperatures
- Mechanical oscillator thermometry in the nonlinear optomechanical regime
- Speed of qubit states during thermalisation
- Relativistic Quantum Thermodynamics of Moving Systems
- Non-equilibrium readiness and accuracy of Gaussian Quantum Thermometers
- Estimating phase with a random generator: Strategies and resources in multiparameter quantum metrology
- Quantum estimation of acceleration and temperature in open quantum system
- Stochastic collisional quantum thermometry
- Machine classification for probe based quantum thermometry