Thermal quantum metrology in memoryless and correlated environments
Abstract
In bosonic quantum metrology, the estimate of a loss parameter is typically performed by means of pure states, such as coherent, squeezed or entangled states, while mixed thermal probes are discarded for their inferior performance. Here we show that thermal sources with suitable correlations can be engineered in such a way to approach, or even surpass, the error scaling of coherent states in the presence of general Gaussian decoherence. Our findings pave the way for practical quantum metrology with thermal sources in optical instruments (e.g., photometers) or at different wavelengths (e.g., far infrared, microwave or X-ray) where the generation of quantum features, such as coherence, squeezing or entanglement, may be extremely challenging.
Cite
@article{arxiv.1602.05958,
title = {Thermal quantum metrology in memoryless and correlated environments},
author = {Gaetana Spedalieri and Cosmo Lupo and Samuel L. Braunstein and Stefano Pirandola},
journal= {arXiv preprint arXiv:1602.05958},
year = {2018}
}
Comments
REVTeX. 9 pages. Includes practical receiver designs and other improvements