Passive optical superresolution at the quantum limit

Fuente: arXiv
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Hauptverfasser: Lvovsky, A. I., Grace, Michael R., Guha, Saikat, Tsang, Mankei, Adesso, Gerardo, Treps, Nicolas
Format: Preprint
Veröffentlicht: 2026
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author Lvovsky, A. I.
Grace, Michael R.
Guha, Saikat
Tsang, Mankei
Adesso, Gerardo
Treps, Nicolas
author_facet Lvovsky, A. I.
Grace, Michael R.
Guha, Saikat
Tsang, Mankei
Adesso, Gerardo
Treps, Nicolas
contents For more than a century, the diffraction limit has defined the resolution achievable by passive optical imaging systems. Although some resolution improvement can be gained through classical data processing of the image, it is limited by the noise arising from quantum nature of light. Minimizing the effect of this noise requires quantum treatment of optical imaging. By reformulating imaging as a problem of quantum measurement and estimation, it becomes possible to identify optimal detection strategies that recover spatial information previously thought inaccessible. This review summarizes the theoretical framework that underpins this development, from the formulation of quantum Cramér-Rao bounds and Chernoff bounds to the construction of receivers that attain them, such as those based on spatial-mode demultiplexing. We show how these methods can beat conventional imaging in the classification, localization, and imaging of sub-Rayleigh incoherent sources. We then discuss extensions to multiparameter and partially coherent scenarios, and highlight the unifying connections between estimation and discrimination tasks. Finally, we survey recent experimental demonstrations that approach quantum-limited resolution and outline emerging applications in microscopy, astronomy, and optical sensing.
format Preprint
id arxiv_https___arxiv_org_abs_2605_10767
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Passive optical superresolution at the quantum limit
Lvovsky, A. I.
Grace, Michael R.
Guha, Saikat
Tsang, Mankei
Adesso, Gerardo
Treps, Nicolas
Quantum Physics
Optics
For more than a century, the diffraction limit has defined the resolution achievable by passive optical imaging systems. Although some resolution improvement can be gained through classical data processing of the image, it is limited by the noise arising from quantum nature of light. Minimizing the effect of this noise requires quantum treatment of optical imaging. By reformulating imaging as a problem of quantum measurement and estimation, it becomes possible to identify optimal detection strategies that recover spatial information previously thought inaccessible. This review summarizes the theoretical framework that underpins this development, from the formulation of quantum Cramér-Rao bounds and Chernoff bounds to the construction of receivers that attain them, such as those based on spatial-mode demultiplexing. We show how these methods can beat conventional imaging in the classification, localization, and imaging of sub-Rayleigh incoherent sources. We then discuss extensions to multiparameter and partially coherent scenarios, and highlight the unifying connections between estimation and discrimination tasks. Finally, we survey recent experimental demonstrations that approach quantum-limited resolution and outline emerging applications in microscopy, astronomy, and optical sensing.
title Passive optical superresolution at the quantum limit
topic Quantum Physics
Optics
url https://arxiv.org/abs/2605.10767