Non-Markovianity-based ultrasensitive parameter estimation
arXiv:2211.05142 · doi:10.1103/9zkj-dwxf
Abstract
Accurate parameter estimation is a central task in quantum metrology and sensing, where quantum resources can provide precision beyond classical limits. In realistic settings, however, system-environment interactions lead to decoherence, reducing these strategies to their classical counterparts. Noise is typically classified as Markovian or non-Markovian, with the latter often preserving quantum coherence longer and thus supporting better metrological performance. Still, the absence of noise is generally considered ideal. In this work, we uncover a striking reversal: certain non-Markovian environments not only outperform Markovian ones - including their quantum Cramér-Rao bounds - but can also surpass the entirely noiseless case. We demonstrate these findings numerically for an all-optical setup, which is experimentally feasible and can be extended to other physical platforms. In general, our results open new avenues for noise-assisted quantum metrology beyond conventional limits.
8 pages, 5 figures
References in corpus (42)
- Measure for the Degree of Non-Markovian Behavior of Quantum Processes in Open Systems
- Non-Markovian dynamics in open quantum systems
- Quantum Non-Markovianity: Characterization, Quantification and Detection
- On the Improvement of Frequency Stardards with Quantum Entanglement
- General framework for estimating the ultimate precision limit in noisy quantum-enhanced metrology
- Measurement of the fine-structure constant as a test of the Standard Model
- Quantum Metrology in Non-Markovian Environments
- Experimental control of the transition from Markovian to non-Markovian dynamics of open quantum systems
- Vibrations, Quanta and Biology
- Optimal Quantum Phase Estimation
- Geodesy and metrology with a transportable optical clock
- Experimental investigation of classical and quantum correlations under decoherence
- Concepts of quantum non-Markovianity: a hierarchy
- A review of progress in the physics of open quantum systems: theory and experiment
- Quantum Metrology in Open Systems: Dissipative Cramér-Rao Bound
- Frequency-Dependent Squeezing for Advanced LIGO
- Quantum Advantage in Postselected Metrology
- Completely Positive Divisibility Does Not Mean Markovianity
- Direct Terrestrial Test of Lorentz Symmetry in Electrodynamics to 10
- Trapped Ion Quantum Information Processing with Squeezed Phonons
- High Precision, Quantum-Enhanced Gravimetry with a Bose-Einstein Condensate
- Nanoscale covariance magnetometry with diamond quantum sensors
- Process POVM: A mathematical framework for the description of process tomography experiments
- Quantum metrology for non-Markovian processes
- Retrieving ideal precision in noisy quantum optical metrology
- Non-Markovian quantum dynamics: What is it good for?
- Phase sensitivity of a Mach-Zehnder interferometer with single-intensity and difference-intensity detection
- Non-Markovian quantum dynamics: What does it mean?
- Experimental implementation of fully controlled dephasing dynamics and synthetic spectral densities
- Quantum non-Markovian processes break conditional past-future independence
- Observing information backflow from controllable non-Markovian multi-channels in diamond
- Realizing controllable noise in photonic quantum information channels
- Revealing memory effects in phase-covariant quantum master equations
- Quantum metrology in a non-Markovian quantum evolution
- Quantum metrology in local dissipative environments
- Characterizing (non-)Markovianity through Fisher Information
- Realizing a variable isotropic depolarizer
- Non-Markovian temperature sensing
- Non-Markovianity, information backflow and system-environment correlation for open-quantum-system processes
- Overcoming noise in quantum teleportation with multipartite hybrid entanglement
- Interferometric Approach to Open Quantum Systems and Non-Markovian Dynamics
- Engineering of Hong-Ou-Mandel interference with effective noise