Picotesla fiberized diamond-based AC magnetometer

Author:

Zhang Shao-Chun1,Liu Yong1,Shan Long-Kun1,Gao Xue-Dong12,Geng Jia-Qi3ORCID,Yu Cui2,Dong Yang1,Chen Xiang-Dong1ORCID,Guo Guang-Can1,Sun Fang-Wen1ORCID

Affiliation:

1. University of Science and Technology of China

2. Hebei Semiconductor Research Institute

3. State Grid Anhui Electric Power Research Institute

Abstract

Portable quantum sensors are crucial for developing practical quantum sensing and metrology applications. Fiberized nitrogen-vacancy (NV) centers in diamonds have emerged as one of the most promising candidates for compact quantum sensors. Nevertheless, due to the difficulty of coherently controlling the ensemble spin and noise suppression in a large volume, it often faces problems such as reduced sensitivity and narrowed bandwidth in integrated lensless applications. Here, we propose a fluorescence signal treatment method for NV spin ensemble manipulation by the exponential fitting of spin polarization processes, instead of integrating the photon emission. This enables spin state readout with a high signal-to-noise ratio and applies to the pulse sensing protocols for large-volume NV spins. Based on this, we further developed a fiberized diamond-based AC magnetometer. With an XY8-N dynamical decoupling pulse sequence, we demonstrated a T2-limited sensitivity of 8  pT/Hz and T1-limited frequency resolution of 90 Hz over a wide frequency band from 100 kHz to 3 MHz. This integrated diamond sensor leverages quantum coherence to achieve enhanced sensitivity in detecting AC magnetic fields, making it suitable for implementation in a compact and portable endoscopic sensor.

Funder

Fundamental Research Funds for the Central Universities

Key Research and Development Plan of Jiangsu Province

National Natural Science Foundation of China

CAS Project for Young Scientists in Basic Research

Innovation Program for Quantum Science and Technology

Publisher

Optica Publishing Group

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