Cryogenic Feedforward of a Photonic Quantum State Article Swipe
YOU?
·
· 2024
· Open Access
·
· DOI: https://doi.org/10.48550/arxiv.2410.08908
Modulation conditioned on measurements on entangled photonic quantum states is a cornerstone technology of optical quantum information processing. Performing this task with low latency requires combining single-photon-level detectors with both electronic logic processing and optical modulation in close proximity. In the technologically relevant telecom wavelength band, detection of photonic quantum states is best performed with high-efficiency, low-noise, and high-speed detectors based on the photon-induced breakdown of superconductivity. Therefore, using these devices for feedforward requires mutual compatibility of all components under cryogenic conditions. Here, we demonstrate low-latency feedforward using a quasi-photon-number-resolved measurement on a quantum light source. Specifically, we use a multipixel superconducting nanowire single-photon detector, amplifier, logic, and an integrated electro-optic modulator in situ below 4K. We modulate the signal mode of a spontaneous parametric down-conversion source, conditional on a photon-number measurement of the idler mode, with a total latency of (23+/-3)ns. The photon-number discrimination actively manipulates the signal mode photon statistics, which is itself a central component in photonic quantum computing reliant on heralded single-photon sources. This represents an important benchmark for the fastest quantum photonic feedforward experiments comprising measurement, amplification, logic and modulation. This has direct applications in quantum computing, communication, and simulation protocols.
Related Topics
- Type
- preprint
- Language
- en
- Landing Page
- http://arxiv.org/abs/2410.08908
- https://arxiv.org/pdf/2410.08908
- OA Status
- green
- Cited By
- 1
- Related Works
- 10
- OpenAlex ID
- https://openalex.org/W4403443734
Raw OpenAlex JSON
- OpenAlex ID
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https://openalex.org/W4403443734Canonical identifier for this work in OpenAlex
- DOI
-
https://doi.org/10.48550/arxiv.2410.08908Digital Object Identifier
- Title
-
Cryogenic Feedforward of a Photonic Quantum StateWork title
- Type
-
preprintOpenAlex work type
- Language
-
enPrimary language
- Publication year
-
2024Year of publication
- Publication date
-
2024-10-11Full publication date if available
- Authors
-
Frederik Thiele, Niklas Lamberty, Thomas Hummel, Nina Amelie Lange, Lorenzo M. Procopio, A. K. Barua, Sebastian Lengeling, Viktor Quiring, Christof Eigner, Christine Silberhorn, Tim J. BartleyList of authors in order
- Landing page
-
https://arxiv.org/abs/2410.08908Publisher landing page
- PDF URL
-
https://arxiv.org/pdf/2410.08908Direct link to full text PDF
- Open access
-
YesWhether a free full text is available
- OA status
-
greenOpen access status per OpenAlex
- OA URL
-
https://arxiv.org/pdf/2410.08908Direct OA link when available
- Concepts
-
Photonics, Feed forward, State (computer science), Quantum, Physics, Optoelectronics, Quantum mechanics, Computer science, Engineering, Control engineering, AlgorithmTop concepts (fields/topics) attached by OpenAlex
- Cited by
-
1Total citation count in OpenAlex
- Citations by year (recent)
-
2025: 1Per-year citation counts (last 5 years)
- Related works (count)
-
10Other works algorithmically related by OpenAlex
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| abstract_inverted_index.protocols. | 195 |
| abstract_inverted_index.proximity. | 38 |
| abstract_inverted_index.represents | 168 |
| abstract_inverted_index.simulation | 194 |
| abstract_inverted_index.technology | 12 |
| abstract_inverted_index.wavelength | 44 |
| abstract_inverted_index.(23+/-3)ns. | 141 |
| abstract_inverted_index.conditional | 127 |
| abstract_inverted_index.conditioned | 1 |
| abstract_inverted_index.conditions. | 81 |
| abstract_inverted_index.cornerstone | 11 |
| abstract_inverted_index.demonstrate | 84 |
| abstract_inverted_index.experiments | 178 |
| abstract_inverted_index.feedforward | 72, 86, 177 |
| abstract_inverted_index.information | 16 |
| abstract_inverted_index.low-latency | 85 |
| abstract_inverted_index.manipulates | 146 |
| abstract_inverted_index.measurement | 90, 131 |
| abstract_inverted_index.modulation. | 184 |
| abstract_inverted_index.processing. | 17 |
| abstract_inverted_index.spontaneous | 123 |
| abstract_inverted_index.statistics, | 151 |
| abstract_inverted_index.applications | 188 |
| abstract_inverted_index.measurement, | 180 |
| abstract_inverted_index.measurements | 3 |
| abstract_inverted_index.Specifically, | 96 |
| abstract_inverted_index.compatibility | 75 |
| abstract_inverted_index.electro-optic | 110 |
| abstract_inverted_index.photon-number | 130, 143 |
| abstract_inverted_index.single-photon | 103, 165 |
| abstract_inverted_index.amplification, | 181 |
| abstract_inverted_index.communication, | 192 |
| abstract_inverted_index.discrimination | 144 |
| abstract_inverted_index.photon-induced | 63 |
| abstract_inverted_index.down-conversion | 125 |
| abstract_inverted_index.superconducting | 101 |
| abstract_inverted_index.technologically | 41 |
| abstract_inverted_index.high-efficiency, | 55 |
| abstract_inverted_index.superconductivity. | 66 |
| abstract_inverted_index.single-photon-level | 26 |
| abstract_inverted_index.quasi-photon-number-resolved | 89 |
| cited_by_percentile_year | |
| countries_distinct_count | 0 |
| institutions_distinct_count | 11 |
| citation_normalized_percentile |