Critical Sensing with Autonomous Devices: The Self-Oscillation Threshold of a Frequency-Locked NV-Centre Magnetometer
Joan Toledo Aguilera, Gonzalo Reina Rivero, Marcel Morillas-Rozas, Javier Cerrillo
Abstract
Feedback locking of a probe frequency to a spin resonance is the standard operating mode of precision quantum sensors. Here we deliberately operate such a lock outside its stable regime: a continuous-wave nitrogen-vacancy (NV) ensemble magnetometer, frequency-modulation (FM) locked to one flank of its optically detected magnetic resonance (ODMR), is driven through the flip (period-doubling) bifurcation of its discrete feedback map by raising the software loop gain G. Beyond a critical gain the lock becomes a self-sustained oscillator whose limit cycle is generated by the loop itself. We derive the threshold condition = 2\,/, which identifies the measurable content of the threshold: the ratio of the transduction slope of the ODMR lock-in signal at calibration time Dcal to its value at present Dtrue. We present an identifiability analysis showing which physical parameters this single scalar can and cannot distinguish, characterize the estimators of under realistic noise, and report measurements on our current setup: an experimental bifurcation diagram with onset at ≈ 2 as predicted for a self-calibrated loop, sub-threshold critical fluctuations following the predicted G/(2-G) divergence.
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