Self-referenced hologram of a single photon beam

Quantitative characterization of the spatial structure of single photons is essential for free-space quantum communication and quantum imaging. We introduce an interferometric technique that enables the complete characterization of a two-dimensional probability amplitude of a single photon. Importan...

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Main Authors: Wiktor Szadowiak, Sanjukta Kundu, Jerzy Szuniewicz, Radek Lapkiewicz
Format: Article
Language:English
Published: Verein zur Förderung des Open Access Publizierens in den Quantenwissenschaften 2021-08-01
Series:Quantum
Online Access:https://quantum-journal.org/papers/q-2021-08-03-516/pdf/
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spelling doaj-742a743e34a14d479fe84a82a01d4de92021-08-03T14:41:20ZengVerein zur Förderung des Open Access Publizierens in den QuantenwissenschaftenQuantum2521-327X2021-08-01551610.22331/q-2021-08-03-51610.22331/q-2021-08-03-516Self-referenced hologram of a single photon beamWiktor SzadowiakSanjukta KunduJerzy SzuniewiczRadek LapkiewiczQuantitative characterization of the spatial structure of single photons is essential for free-space quantum communication and quantum imaging. We introduce an interferometric technique that enables the complete characterization of a two-dimensional probability amplitude of a single photon. Importantly, in contrast to methods that use a reference photon for the phase measurement, our technique relies on a single photon interfering with itself. Our setup comprises of a heralded single-photon source with an unknown spatial phase and a modified Mach-Zehnder interferometer with a spatial filter in one of its arms. The spatial filter removes the unknown spatial phase and the filtered beam interferes with the unaltered beam passing through the other arm of the interferometer. We experimentally confirm the feasibility of our technique by reconstructing the spatial phase of heralded single photons using the lowest order interference fringes. This technique can be applied to the characterization of arbitrary pure spatial states of single photons.https://quantum-journal.org/papers/q-2021-08-03-516/pdf/
collection DOAJ
language English
format Article
sources DOAJ
author Wiktor Szadowiak
Sanjukta Kundu
Jerzy Szuniewicz
Radek Lapkiewicz
spellingShingle Wiktor Szadowiak
Sanjukta Kundu
Jerzy Szuniewicz
Radek Lapkiewicz
Self-referenced hologram of a single photon beam
Quantum
author_facet Wiktor Szadowiak
Sanjukta Kundu
Jerzy Szuniewicz
Radek Lapkiewicz
author_sort Wiktor Szadowiak
title Self-referenced hologram of a single photon beam
title_short Self-referenced hologram of a single photon beam
title_full Self-referenced hologram of a single photon beam
title_fullStr Self-referenced hologram of a single photon beam
title_full_unstemmed Self-referenced hologram of a single photon beam
title_sort self-referenced hologram of a single photon beam
publisher Verein zur Förderung des Open Access Publizierens in den Quantenwissenschaften
series Quantum
issn 2521-327X
publishDate 2021-08-01
description Quantitative characterization of the spatial structure of single photons is essential for free-space quantum communication and quantum imaging. We introduce an interferometric technique that enables the complete characterization of a two-dimensional probability amplitude of a single photon. Importantly, in contrast to methods that use a reference photon for the phase measurement, our technique relies on a single photon interfering with itself. Our setup comprises of a heralded single-photon source with an unknown spatial phase and a modified Mach-Zehnder interferometer with a spatial filter in one of its arms. The spatial filter removes the unknown spatial phase and the filtered beam interferes with the unaltered beam passing through the other arm of the interferometer. We experimentally confirm the feasibility of our technique by reconstructing the spatial phase of heralded single photons using the lowest order interference fringes. This technique can be applied to the characterization of arbitrary pure spatial states of single photons.
url https://quantum-journal.org/papers/q-2021-08-03-516/pdf/
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AT sanjuktakundu selfreferencedhologramofasinglephotonbeam
AT jerzyszuniewicz selfreferencedhologramofasinglephotonbeam
AT radeklapkiewicz selfreferencedhologramofasinglephotonbeam
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