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A von-Neumann-like photonic processor and its application in studying quantum signature of chaos.

Authors :
Yu S
Liu W
Tao SJ
Li ZP
Wang YT
Zhong ZP
Patel RB
Meng Y
Yang YZ
Wang ZA
Guo NJ
Zeng XD
Chen Z
Xu L
Zhang N
Liu X
Yang M
Zhang WH
Zhou ZQ
Xu JS
Tang JS
Han YJ
Li CF
Guo GC
Source :
Light, science & applications [Light Sci Appl] 2024 Mar 14; Vol. 13 (1), pp. 74. Date of Electronic Publication: 2024 Mar 14.
Publication Year :
2024

Abstract

Photonic quantum computation plays an important role and offers unique advantages. Two decades after the milestone work of Knill-Laflamme-Milburn, various architectures of photonic processors have been proposed, and quantum advantage over classical computers has also been demonstrated. It is now the opportune time to apply this technology to real-world applications. However, at current technology level, this aim is restricted by either programmability in bulk optics or loss in integrated optics for the existing architectures of processors, for which the resource cost is also a problem. Here we present a von-Neumann-like architecture based on temporal-mode encoding and looped structure on table, which is capable of multimode-universal programmability, resource-efficiency, phase-stability and software-scalability. In order to illustrate these merits, we execute two different programs with varying resource requirements on the same processor, to investigate quantum signature of chaos from two aspects: the signature behaviors exhibited in phase space (13 modes), and the Fermi golden rule which has not been experimentally studied in quantitative way before (26 modes). The maximal program contains an optical interferometer network with 1694 freely-adjustable phases. Considering current state-of-the-art, our architecture stands as the most promising candidate for real-world applications.<br /> (© 2024. The Author(s).)

Details

Language :
English
ISSN :
2047-7538
Volume :
13
Issue :
1
Database :
MEDLINE
Journal :
Light, science & applications
Publication Type :
Academic Journal
Accession number :
38485915
Full Text :
https://doi.org/10.1038/s41377-024-01413-5