Measurement of weak static magnetic fields with nitrogen-vacancy color center
Lu-Si Li, Hong-Hui Li, Li-Li Zhou, Zhi-Sheng Yang, Qing Ai

TL;DR
This paper presents a method using nitrogen-vacancy centers in diamond to measure weak static magnetic fields with high precision by analyzing decoherence times, inspired by avian magnetoreception models.
Contribution
It introduces a novel approach to quantify magnetic fields via decoherence times, especially T_R, in NV centers, enhancing measurement sensitivity and accuracy.
Findings
T_R time scale shows highest sensitivity to magnetic fields.
Measurement accuracy can reach 60 nT/Hz^{1/2}.
Using NV ensembles or purified diamond improves precision.
Abstract
We propose a strategy to measure weak static magnetic fields with nitrogen-vacancy color center in diamond. Inspired by avian magnetoreception models, we consider the feasibility of utilizing quantum coherence phenomena to measure weak static magnetic fields. Nitrogen-vacancy (NV) color centers are regarded as the ideal platform to study quantum sciences as a result of its long coherence time up to a millisecond timescale. In high-purity diamond, hyperfine interaction with 13C nuclear spins dominates the decoherence process. In this paper, we numerically simulate the decoherence process between 0 and +1 of the individual NV color center spin in 13C nuclear baths with various of magnitudes of external magnetic fields. By applying Hahn echo into the system, we obtain the coherence of NV color center spin as a function of total evolution time and magnetic field. Furthermore we obtain the…
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