Integrated photonic programmable random matrix generator with minimal active components

Guardat en:
Dades bibliogràfiques
Publicat a:NPJ Nanophotonics vol. 2, no. 1 (Dec 2025), p. 6-17
Autor principal: Zelaya, Kevin
Altres autors: Honari-Latifpour, Mostafa, Miri, Mohammad-Ali
Publicat:
Nature Publishing Group
Matèries:
Accés en línia:Citation/Abstract
Full Text
Full Text - PDF
Etiquetes: Afegir etiqueta
Sense etiquetes, Sigues el primer a etiquetar aquest registre!

MARC

LEADER 00000nab a2200000uu 4500
001 3225848526
003 UK-CbPIL
022 |a 2948-216X 
024 7 |a 10.1038/s44310-025-00054-9  |2 doi 
035 |a 3225848526 
045 2 |b d20251201  |b d20251231 
100 1 |a Zelaya, Kevin  |u Department of Physics, Queens College of the City University of New York, 11367, Queens, NY, USA (ROR: https://ror.org/03v8adn41) (GRID: grid.262273.0) (ISNI: 0000 0001 2188 3760) 
245 1 |a Integrated photonic programmable random matrix generator with minimal active components 
260 |b Nature Publishing Group  |c Dec 2025 
513 |a Journal Article 
520 3 |a Random matrices are fundamental in photonic computing because of their ability to model and enhance complex light interactions and signal processing capabilities. In manipulating classical light, random operations are utilized for random projections and dimensionality reduction, which are important for analog signal processing, computing, and imaging. In quantum information processing, random unitary operations are essential to boson sampling algorithms for multiphoton states in linear photonic circuits. Random operations are typically realized in photonic circuits through fixed disordered structures or through large meshes of interferometers with reconfigurable phase shifters, requiring a large number of active components. In this article, we introduce a compact photonic circuit for generating random matrices by utilizing programmable phase modulation layers interlaced with a fixed mixing operator. We show that using only two random phase layers is sufficient for producing output optical signals with a white-noise profile, even for highly sparse input optical signals. We experimentally demonstrate these results using a silicon-based photonic circuit with tunable thermal phase shifters and waveguide lattices as mixing layers. The proposed circuit offers a practical method for generating random matrices for photonic information processing and for applications in data encryption. 
653 |a Propagation 
653 |a Integrated circuits 
653 |a Quantum computing 
653 |a Data processing 
653 |a Phase modulation 
653 |a Quantum phenomena 
653 |a Signal processing 
653 |a Operators (mathematics) 
653 |a Electric fields 
653 |a Design 
653 |a Phase shifters 
653 |a Circuits 
653 |a Arrays 
653 |a Photonics 
653 |a Mixing layers (fluids) 
653 |a Light 
653 |a Waveguides 
700 1 |a Honari-Latifpour, Mostafa  |u Department of Physics, Queens College of the City University of New York, 11367, Queens, NY, USA (ROR: https://ror.org/03v8adn41) (GRID: grid.262273.0) (ISNI: 0000 0001 2188 3760); Physics Program, The Graduate Center, City University of New York, 10016, New York, NY, USA (ROR: https://ror.org/00453a208) (GRID: grid.212340.6) (ISNI: 0000 0001 2298 5718) 
700 1 |a Miri, Mohammad-Ali  |u Department of Physics, Queens College of the City University of New York, 11367, Queens, NY, USA (ROR: https://ror.org/03v8adn41) (GRID: grid.262273.0) (ISNI: 0000 0001 2188 3760); Physics Program, The Graduate Center, City University of New York, 10016, New York, NY, USA (ROR: https://ror.org/00453a208) (GRID: grid.212340.6) (ISNI: 0000 0001 2298 5718) 
773 0 |t NPJ Nanophotonics  |g vol. 2, no. 1 (Dec 2025), p. 6-17 
786 0 |d ProQuest  |t Materials Science Database 
856 4 1 |3 Citation/Abstract  |u https://www.proquest.com/docview/3225848526/abstract/embedded/6A8EOT78XXH2IG52?source=fedsrch 
856 4 0 |3 Full Text  |u https://www.proquest.com/docview/3225848526/fulltext/embedded/6A8EOT78XXH2IG52?source=fedsrch 
856 4 0 |3 Full Text - PDF  |u https://www.proquest.com/docview/3225848526/fulltextPDF/embedded/6A8EOT78XXH2IG52?source=fedsrch