arXiv · 1808.10327
Ramsey Interferometry in Correlated Quantum Noise Environments
Abstract
We quantify the impact of spatio-temporally correlated Gaussian quantum noise on frequency estimation by Ramsey interferometry. While correlations in a classical noise environment can be exploited to reduce uncertainty relative to the uncorrelated case, we show that quantum noise environments with frequency asymmetric spectra generally introduce additional sources of uncertainty due to uncontrolled entanglement of the sensing system mediated by the bath. For the representative case of collective noise from bosonic sources, and experimentally relevant collective spin observables, we find that the uncertainty can increase exponentially with the number of probes. As a concrete application, we show that correlated quantum noise due to a lattice vibrational mode can preclude superclassical precision scaling in current amplitude sensing experiments with trapped ions.
Explore related subjects
Keep this discovery
Félix Beaudoin, Leigh M. Norris, Lorenza Viola. 2018-08-30. Ramsey Interferometry in Correlated Quantum Noise Environments. https://doi.org/10.1103/physreva.98.020102
Cite the original work for its findings. Save a collection to share your selection of sources.