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Research PaperResearchia:202601.29122

Photonic Links for Spin-Based Quantum Sensors

M. Reefaz Rahman

Abstract

A growing variety of optically accessible spin qubits have emerged in recent years as key components for quantum sensors, qubits, and quantum memories. However, the scalability of conventional spin-based quantum architectures remains limited by direct microwave delivery, which introduces thermal noise, electromagnetic cross-talk, and design constraints for cryogenic, high-field, and distributed systems. In this work, we present a unified framework for RF-over-fiber (RFoF) control of optically ac...

Submitted: January 29, 2026Subjects: Quantum Physics; Quantum Physics

Description / Details

A growing variety of optically accessible spin qubits have emerged in recent years as key components for quantum sensors, qubits, and quantum memories. However, the scalability of conventional spin-based quantum architectures remains limited by direct microwave delivery, which introduces thermal noise, electromagnetic cross-talk, and design constraints for cryogenic, high-field, and distributed systems. In this work, we present a unified framework for RF-over-fiber (RFoF) control of optically accessible spins through RFoF optically detected magnetic resonance (ODMR) spectroscopy of nitrogen-vacancy (NV) centers in diamond. The RFoF platform relies on an electro-optically modulated telecom-band laser that transmits microwave signals over fiber and a high-speed photodiode that recovers the RF waveform to drive NV center spin transitions. We obtain an RFoF efficiency of 1.81% at 2.90~GHz, corresponding to PRF,out=βˆ’0.7P_{\mathrm{RF,out}}=-0.7~dBm. The RFoF architecture provides a path toward low-noise, thermally isolated, and cryo-compatible ODMR systems bridging conventional spin-based quantum sensing protocols with emerging distributed quantum technologies.


Source: arXiv:2601.22011v1 - http://arxiv.org/abs/2601.22011v1 PDF: https://arxiv.org/pdf/2601.22011v1 Original Link: http://arxiv.org/abs/2601.22011v1

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Date:
Jan 29, 2026
Topic:
Quantum Physics
Area:
Quantum Physics
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