Quantum diamond microscopy with optimized magnetic field sensitivity and sub-ms temporal resolution

Author:

Oh Sangwon1ORCID,Lee Seong-Joo1ORCID,Shim Jeong Hyun12,Song Nam Woong1,Hien Truong Thi1

Affiliation:

1. Quantum Magnetic Imaging Team, Korea Research Institute of Standards and Science 1 , Daejeon 34113, South Korea

2. Department of Applied Measurement Science, University of Science and Technology 2 , Daejeon 34113, South Korea

Abstract

Quantum diamond magnetometers using lock-in detection have successfully detected weak bio-magnetic fields from neurons, a live mammalian muscle, and a live mouse heart. This opens up the possibility of quantum diamond magnetometers visualizing microscopic distributions of the bio-magnetic fields. Here, we demonstrate a lock-in-based widefield quantum diamond microscopy, achieving a mean volume-normalized per-pixel sensitivity of 43.9 nTμm1.5/Hz0.5. We optimize the sensitivity by implementing a double resonance with hyperfine driving and magnetic field alignment along the ⟨001⟩ orientation of the diamond. Additionally, we show that sub-ms temporal resolution (∼0.4 ms) can be achieved while keeping the per-pixel sensitivity at a few tens of nanotesla per second using quantum diamond microscopy. This lock-in-based diamond quantum microscopy could be a step forward in mapping functional activity in neuronal networks in micrometer spatial resolution.

Funder

Institute of Information and Communications Technology Planning & Evaluation(IITP) grant funded by the Korean government

Korea Research Institute of Standards and Science

Publisher

AIP Publishing

Subject

General Physics and Astronomy

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