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Bridging Classical and Quantum Approaches for Quantitative Sensing of Turbid Media with Polarization‐Entangled Photons

  • Vira R. Besaga*
  • , Ivan V. Lopushenko*
  • , Oleksii Sieryi
  • , Alexander Bykov
  • , Frank Setzpfandt
  • , Igor Meglinski
  • *Corresponding author for this work
  • Friedrich-Schiller-University Jena
  • Univ. of Oulu (Finland)

Research output: Contribution to journalArticlepeer-review

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Abstract

Polarimetry with quantum light promises improved measurements for various scenarios. However, fundamental understanding of quantum photonic state transport in complex, real media, and tools to interpret the state after interaction with the sample are still lacking. Here, we theoretically and experimentally explore the evolution of polarization‐entangled states in a turbid medium on example of tissue phantoms. By elaborating mathematical relationship between Wolf's coherency matrix and density matrix, we introduce a versatile framework describing the transfer of entangled photons in turbid environments with polarization tracking and resulting quantum state representation with the density operator. Experimentally, we reveal a robust trend in the state evolution depending on the reduced scattering coefficient of the medium. Our theoretical predictions correlate with experimental findings, while the model extends the study by photonic states with different degrees of entanglement. The presented results pave the way for quantitative quantum photonic sensing enabling applications ranging from biomedical diagnostics to remote sensing.
Original languageEnglish
Article numbere01172
Number of pages13
JournalLaser and Photonics Reviews
Volume20
Issue number10
Early online date4 Jan 2026
DOIs
Publication statusPublished - 22 May 2026

Bibliographical note

Copyright © 2026 The Author(s). Laser & Photonics Reviews published by Wiley-VCH GmbH. This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.

Data Access Statement

All data needed to evaluate the conclusions in the paper are present in the paper and/or the Supplementary Materials.

Funding

This research has been supported by Horizon 2020 COST Actions: CA23125 – The mETamaterial foRmalism approach to recognize cAncer (TETRA) and CA21159 – Understanding interaction light - biological surfaces: possibility for new electronic materials and devices (PhoBioS). The work has also been partly funded by German Ministry of Education and Research (project “QUANCER”, FKZ 13N16441), Academy of Finland (Grant project No. 325097) and UK Department for Science Innovation and Technology in partnership with the British Council. V.B. thanks for funding of this work also to ProChance-career program of the Friedrich Schiller University Jena.

Keywords

  • coherency matrix
  • polarization‐entangled photons
  • scattering
  • Monte Carlo
  • density matrix

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