Quantum advantage of time-reversed ancilla-based metrology of absorption parameters
Jiaxuan Wang, Ruynet. L. de Matos Filho, Girish S. Agarwal, and Luiz, Davidovich

TL;DR
This paper demonstrates a quantum metrology strategy using time-reversed ancilla-based techniques to achieve optimal precision in estimating light absorption, robust against noise and photon losses, with practical implementation considerations.
Contribution
It introduces a time-reversal approach with optical parametric amplifiers for enhanced absorption parameter estimation, surpassing classical limits and being resilient to noise and losses.
Findings
Achieves quantum Fisher information limit with joint photon counting.
Robustness against phase noise and disentanglement.
Effective alternative method using time-reversal with comparable precision.
Abstract
Quantum estimation of parameters defining open-system dynamics may be enhanced by using ancillas that are entangled with the probe but are not submitted to the dynamics. Here we consider the important problem of estimation of transmission of light by a sample, with losses due to absorption and scattering. We show, through the determination of the quantum Fisher information, that the ancilla strategy leads to the best possible precision in single-mode estimation, the one obtained for a Fock state input, through joint photon-counting of probe and ancilla, which are modes of a bimodal squeezed state produced by an optical parametric amplifier. This proposal overcomes the challenge of producing and detecting high photon-number Fock states, and it is quite robust against additional noise: we show that it is immune to phase noise and the precision does not change if the incoming state gets…
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Taxonomy
TopicsQuantum Information and Cryptography · Cold Atom Physics and Bose-Einstein Condensates · Mechanical and Optical Resonators
