arXiv · 2607.18053
Fiber-Optic Communication and Torsion Sensing via a BB84-Inspired Polarization Scheme
Abstract
Polarization-encoded optical-fiber links provide a useful platform for investigating the coexistence of communication and sensing functions in a shared optical channel. In this work, a classical analog of the BB84 polarization-encoding scheme was implemented over a bend-insensitive fiber link to evaluate how temperature, axial strain, and torsion affect the transmitted state of polarization and the recovery of a binary key. Temperature variations from 24 {\deg}C to 35 {\deg}C and axial strain up to 2 m{\epsilon} produced only minor polarization-state variations and did not affect key recovery. In contrast, fiber torsion induced a pronounced retarder-like evolution of the state of polarization, reducing the detector-intensity contrast used for bit discrimination and degrading key recovery. For intermediate torsion angles, the erasure rate reached 50%. The polarization state tended to recover for rotations close to {\Delta}{\theta} = 180{\deg}, consistent with the oscillatory response observed on the Poincar\'e sphere. These results identify torsion as the dominant impairment in the tested polarization-encoded fiber link and demonstrate its potential use as a sensing mechanism in integrated communication-and-sensing architectures.
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Vinícius Piaia, Rodrigo Cosme, Paulo Robalinho, Susana Silva, Henrique M. Salgado, Orlando Frazão. 2026-07-20. Fiber-Optic Communication and Torsion Sensing via a BB84-Inspired Polarization Scheme. https://arxiv.org/abs/2607.18053
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