Development of biphoton entangled light spectroscopy (BELS) using Bell pairs
We introduce Biphoton Entangled Light Spectroscopy (BELS), a quantum spectroscopic technique that employs polarization-entangled Bell pairs and two-photon interference to probe material properties. In BELS, the measured signal arises not from single-photon intensities but from changes in the joint polarization and path correlations of biphoton Bell pairs transmitted through or scattered by a sample and analyzed via cross-channel coincidences. A key concept of BELS is the explicit mapping between Jones matrix operations and transformations within the Bell-state manifold. Optical elements that are equivalent under classical polarization optics can produce qualitatively distinct signatures in the coincidence landscape when interrogated with entangled photons. We demonstrate that linear birefringence and Faraday rotation generate orthogonal admixtures of Bell states, yielding experimentally distinguishable coincidence channels within a single measurement. We measure birefringence in an anisotropic dielectric and Faraday rotation in Tb 3 Ga 5 O 12 . By mapping the changes to the photonic entanglement, BELS establishes a new framework for future entanglement enhanced spectroscopy–a potentially powerful approach in characterizing quantum materials, nanophotonic devices, and light–matter interactions perhaps eventually at a fundamentally quantum level.
Authors
- V. V. Desai
- N. P. Armitage
Institutions
- Johns Hopkins University (US)
- University of Baltimore (US)
Publication Details
- Journal
- Scientific Reports
- Published
- 2026-09-10
- DOI
- https://doi.org/10.1038/s41598-026-66342-2
- Primary Topic
- Quantum Information and Cryptography
- Type
- article
- Field-Weighted Citation Impact
- 0.00