Critical Sensing with Autonomous Devices: The Self-Oscillation Threshold of a Frequency-Locked NV-Centre Magnetometer
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 $\G...
Description / Details
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 . 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 , which identifies the measurable content of the threshold: the ratio of the transduction slope of the ODMR lock-in signal at calibration time to its value at present . 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 as predicted for a self-calibrated loop, sub-threshold critical fluctuations following the predicted divergence.
Source: arXiv:2607.22521v1 - http://arxiv.org/abs/2607.22521v1 PDF: https://arxiv.org/pdf/2607.22521v1 Original Link: http://arxiv.org/abs/2607.22521v1
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Jul 27, 2026
Quantum Computing
Quantum Physics
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