English

A robust laser cavity platform for NV-diamond singlet infrared absorption magnetometry

Quantum Physics 2026-04-22 v1

Abstract

The negatively charged nitrogen-vacancy center (NV^-) in diamond is a versatile platform for quantum magnetometry under ambient conditions. Recently, laser threshold magnetometry (LTM) has been proposed as a means to significantly enhance the sensitivity of NV-based magnetometers by incorporating a diamond hosting NV^- centers within a laser cavity and operating near threshold. While demonstrations have validated the concept, practical implementations remain technically demanding, requiring high pump powers and precise alignment of free-space cavities. It remains unclear whether the benefits of operating near threshold will outpace increased laser noise. In this work, we integrate an NV-diamond with a high NV^- content into a compact external cavity diode laser and demonstrate singlet infrared absorption optically detected magnetic resonance (ODMR). The system exhibits exceptional threshold current stability, enabling ODMR using the threshold current as the read-out parameter. We report a five-fold enhancement in the ODMR contrast by operating near threshold. The best magnetic field sensitivity of 7.6 nT/Hz7.6~\mathrm{nT/\sqrt{Hz}} (DC-500 Hz) is achieved well above threshold, while near threshold sensitivity is limited by increased probe laser noise. These results establish a compact and mechanically robust platform for singlet absorption-based NV^- magnetometry and highlight key trade-offs between contrast enhancement and laser noise near threshold.

Keywords

Cite

@article{arxiv.2604.18937,
  title  = {A robust laser cavity platform for NV-diamond singlet infrared absorption magnetometry},
  author = {Shao Qi Lim and Alexander A. Wood and Brett C. Johnson and Qiang Sun and Jan Jeske and Hiroshi Abe and Takeshi Ohshima and David J. Ottaway and Heike Ebendorff-Heidepriem and Robert E. Scholten and Andrew D. Greentree and Brant C. Gibson},
  journal= {arXiv preprint arXiv:2604.18937},
  year   = {2026}
}

Comments

10 pages, 5 figures

R2 v1 2026-07-01T12:27:26.875Z