Quantum diamond microscope for dynamic imaging of magnetic fields

Author:

Tang Jiashen12ORCID,Yin Zechuan23ORCID,Hart Connor A.23ORCID,Blanchard John W.23ORCID,Oon Jner Tzern12ORCID,Bhalerao Smriti4ORCID,Schloss Jennifer M.5ORCID,Turner Matthew J.23ORCID,Walsworth Ronald L.123ORCID

Affiliation:

1. Department of Physics, University of Maryland 1 , College Park, Maryland 20742, USA

2. Quantum Technology Center, University of Maryland 2 , College Park, Maryland 20742, USA

3. Department of Electrical Engineering and Computer Science, University of Maryland 3 , College Park, Maryland 20742, USA

4. Fischell Department of Bioengineering, University of Maryland 4 , College Park, Maryland 20742, USA

5. Lincoln Laboratory, Massachusetts Institute of Technology 5 , Lexington, Massachusetts 02421, USA

Abstract

Wide-field imaging of magnetic signals using ensembles of nitrogen-vacancy (NV) centers in diamond has garnered increasing interest due to its combination of micron-scale resolution, millimeter-scale field of view, and compatibility with diverse samples from across the physical and life sciences. Recently, wide-field NV magnetic imaging based on the Ramsey protocol has achieved uniform and enhanced sensitivity compared to conventional measurements. Here, we integrate the Ramsey-based protocol with spin-bath driving to extend the NV spin dephasing time and improve magnetic sensitivity. We also employ a high-speed camera to enable dynamic wide-field magnetic imaging. We benchmark the utility of this quantum diamond microscope (QDM) by imaging magnetic fields produced from a fabricated wire phantom. Over a 270 × 270 μm2 field of view, a median per-pixel magnetic sensitivity of 4.1(1) nT /Hz is realized with a spatial resolution ≲ 10 μm and sub-millisecond temporal resolution. Importantly, the spatial magnetic noise floor can be reduced to the picotesla scale by time-averaging and signal modulation, which enables imaging of a magnetic-field pattern with a peak-to-peak amplitude difference of about 300 pT. Finally, we discuss potential new applications of this dynamic QDM in studying biomineralization and electrically active cells.

Funder

U.S. Army Research Laboratory

U.S. Army Research Office

DARPA DRINQS Program

National Science Foundation

U.S. Air Force Office of Scientific Research

Gordon and Betty Moore Foundation

University of Maryland Quantum Technology Center

Publisher

American Vacuum Society

Subject

Electrical and Electronic Engineering,Computational Theory and Mathematics,Physical and Theoretical Chemistry,Computer Networks and Communications,Condensed Matter Physics,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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