4.7 Article

Quantum light transport in phase-separated Anderson localization fiber

期刊

COMMUNICATIONS PHYSICS
卷 5, 期 1, 页码 -

出版社

NATURE PORTFOLIO
DOI: 10.1038/s42005-022-01036-5

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资金

  1. European Union [801060, PRTR-C17.I1, 713729]
  2. Spanish State Research Agency [MCIN/AEI] [CEX2019-000910-S]
  3. MCIN
  4. Generalitat de Catalunya
  5. Fundacio Cellex
  6. Fundacio Mir-Puig
  7. Generalitat de Catalunya through CERCA
  8. ICFO CELLEX Ph.D-fellowship
  9. Becas Chile from ANID, Chile [74200052]
  10. MCIN/AEI [CEX2019000910-S]

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This work demonstrates the potential for quantum light transport using a phase separated glass Anderson localization optical fiber, enabling quantum imaging and communication applications. The results show that spatial correlations between photon pairs are preserved after propagation, making the proposed fiber an effective platform for quantum imaging and communication.
Anderson localization, a strong localization effect that prevents wave diffusion, is fundamentally important in manipulating wave propagation in a disordered medium. This work uses a phase separated glass Anderson localization optical fiber and demonstrates quantum light transport, which shows the potential for transmission of high dimensional quantum information, thereby enabling quantum imaging and quantum communication applications. Propagation of light by Anderson localization has been demonstrated in micro-nano-structured fibers. In this work, we introduce a phase separated glass Anderson localization optical fiber for quantum applications. By using a spontaneous parametric down-conversion source, multi-photon detection with a single-photon avalanche diode array camera, and signal post-processing techniques, we demonstrate quantum light transport, where spatial correlations between photon pairs are preserved after propagation. In order to better understand and improve light transport, we study light localization, observing a dependence on wavelength. Our results indicate that the proposed phase separated fiber may become an effective platform for quantum imaging and communication.

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