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Quantum imaging beyond the standard-quantum limit and phase distillation

Schaffrath, Simon ; Derr, Daniel ; Gräfe, Markus ; Giese, Enno (2024)
Quantum imaging beyond the standard-quantum limit and phase distillation.
In: New Journal of Physics, 2024, 26
doi: 10.26083/tuprints-00027028
Article, Secondary publication, Publisher's Version

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Item Type: Article
Type of entry: Secondary publication
Title: Quantum imaging beyond the standard-quantum limit and phase distillation
Language: English
Date: 1 August 2024
Place of Publication: Darmstadt
Year of primary publication: 2024
Place of primary publication: [London]
Publisher: IOP Publishing
Journal or Publication Title: New Journal of Physics
Volume of the journal: 26
Collation: 13 Seiten
DOI: 10.26083/tuprints-00027028
Corresponding Links:
Origin: Secondary publication service
Abstract:

Quantum sensing using non-linear interferometers (NLIs) offers the possibility of bicolour imaging, using light that never interacted with the object of interest, and provides a way to achieve phase supersensitivity, i.e. a Heisenberg-type scaling of the phase uncertainty. Such a scaling behaviour is extremely susceptible to noise and only arises at specific phases that define the optimal working point (WP) of the device. While phase-shifting algorithms are to some degree robust against the deleterious effects induced by noise they extract an image by tuning the interferometer phase over a broad range, implying an operation beyond the WP. In our theoretical study, we investigate both the spontaneous and the high-gain regime of operation of an NLI. In fact, in the spontaneous regime using a distillation technique and operating at the WP leads to a qualitatively similar behaviour. In the high-gain regime, however, typical distillation techniques inherently forbid a scaling better than the standard-quantum limit, as a consequence of the photon statistics of squeezed vacuum. In contrast, an operation at the WP still may lead to a sensitivity below shot noise, even in the presence of noise. Therefore, this procedure opens the perspective of bicolour imaging with a better than shot-noise phase uncertainty by working in the vicinity of the WP. Our results transfer quantum imaging distillation in a noisy environment to the high-gain regime with the ultimate goal of harnessing its full potential by combining bicolour imaging and phase supersensitivity.

Uncontrolled Keywords: quantum imaging, quantum metrology, supersensitivity, squeezing, phase-shifting algorithm, non-linear interferometer, standard quantum limit
Status: Publisher's Version
URN: urn:nbn:de:tuda-tuprints-270283
Classification DDC: 500 Science and mathematics > 530 Physics
Divisions: 05 Department of Physics > Institute of Applied Physics
05 Department of Physics > Institute of Applied Physics > Theoretical Quantum Optics
Date Deposited: 01 Aug 2024 12:44
Last Modified: 01 Aug 2024 12:45
URI: https://tuprints.ulb.tu-darmstadt.de/id/eprint/27028
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