Optimal distributed quantum sensing using Gaussian states

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We find and investigate the optimal scheme of distributed quantum sensing using Gaussian states for estimation of the average of independent phase shifts. We show that the ultimate sensitivity is achievable by using an entangled symmetric Gaussian state, which can be generated using a single-mode squeezed vacuum state, a beam-splitter network, and homodyne detection on each output mode in the absence of photon loss. Interestingly, the maximal entanglement of a symmetric Gaussian state is not optimal although the presence of entanglement is advantageous as compared to the case using a product symmetric Gaussian state. It is also demonstrated that when loss occurs, homodyne detection and other types of Gaussian measurements compete for better sensitivity, depending on the amount of loss and properties of a probe state. None of them provide the ultimate sensitivity, indicating that non-Gaussian measurements are required for optimality in lossy cases. Our general results obtained through a full-analytical investigation will offer important perspectives to the future theoretical and experimental study for distributed Gaussian quantum sensing.
Publisher
AMER PHYSICAL SOC
Issue Date
2020-04
Language
English
Article Type
Article
Citation

PHYSICAL REVIEW RESEARCH, v.2, no.2

ISSN
2643-1564
DOI
10.1103/PhysRevResearch.2.023030
URI
http://hdl.handle.net/10203/318937
Appears in Collection
PH-Journal Papers(저널논문)
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