Polarization Tracking and Active Compensation Using Classical Headers in Quantum Wrapper Networking
Gamze G\"ul, James van Howe, Gregory S. Kanter, Shannon G. Tan, Liam E. Beaudoin, Mehmet Berkay On, Roberto Proietti, S. J. Ben Yoo, Prem Kumar

TL;DR
This paper presents a deterministic, analytical method for active polarization compensation in quantum wrapper networking over long-distance fiber links, enhancing stability and fidelity of quantum communication.
Contribution
It introduces a novel polarization tracking and compensation technique using classical headers, verified on a 48 km deployed fiber link with high stability and recovery accuracy.
Findings
Successfully compensates large, sudden birefringence changes with less than 10° deviation.
Restores two-photon interference visibility to over 79%.
Maintains high polarization stability over 44 hours with active compensation.
Abstract
Quantum wrapper networking (QWN) is an emerging quantum networking protocol that wraps qubits in classical header bits to enable switching/routing, monitoring, and control without detecting the quantum signal. In this work, we encode header bits with two nonorthogonal polarization references to track and actively compensate for the changing birefringence of a 48 km deployed fiber link. Our method is analytical and deterministic, using motorized waveplates and a variable phase retarder to accurately and stably compensate the channel. We verify successful compensation by measuring the polarization stability of single photon qubits and the visibility of entangled photon pairs under both slow birefringence drift due to environmental fluctuations and large sudden changes designed to emulate those that occur during packet switching and rerouting over different fiber paths. For large, sudden…
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