Microwave-photonic control of optically accessible spin defects in diamond
M. Reefaz Rahman, Ryan H. Goldsmith, Karsten Schnier, Benjamin J. Lawrie, Jason D. McKinney, Joseph M. Lukens, Seongsin M. Kim, Patrick KungA growing variety of optically accessible spin qubits have emerged in recent years as key components for quantum sensors, computers, and memories. However, the scalability of conventional spin-based quantum architectures remains limited by direct microwave delivery, which introduces thermal noise, electromagnetic crosstalk, 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 spins accessible through optically detected magnetic resonance (ODMR) spectroscopy of nitrogen-vacancy (NV) centers in diamond. The RFoF platform relies on an intensity-modulated 1310 nm laser carrying microwave signals over fiber and a high-speed photodiode for optical-to-electrical conversion to drive NV spin transitions. We report an RFoF power-conversion efficiency of 3.42% for an RF output PRF,out=−5.5 dBm at 2.87 GHz, enabling clear resolution of Zeeman splitting in proportion to an applied magnetic field. The RFoF architecture provides a path toward low-noise, thermally isolated, and cryo-compatible ODMR systems at sub-THz frequencies, thus bridging conventional spin-based quantum sensing protocols with emerging distributed quantum technologies.