High-Field Optical Cesium Magnetometer for Magnetic Resonance Imaging

Author:

Stærkind Hans12ORCID,Jensen Kasper13ORCID,Müller Jörg H.1ORCID,Boer Vincent O.2ORCID,Polzik Eugene S.1ORCID,Petersen Esben T.24

Affiliation:

1. Niels Bohr Institute, University of Copenhagen, Blegdamsvej 17, Copenhagen 2100, Denmark

2. Danish Research Centre for Magnetic Resonance, Centre for Functional and Diagnostic Imaging and Research, Copenhagen University Hospital - Amager and Hvidovre, Kettegård Allé 30, Hvidovre 2650, Denmark

3. School of Physics and Astronomy, University of Nottingham, University Park, Nottingham NG7 2RD, United Kingdom

4. Section for Magnetic Resonance, DTU-Health Tech, Technical University of Denmark, Oersteds Plads, Building 349, 1st floor, Kgs Lyngby 2800, Denmark

Abstract

We present a novel high-field optical quantum magnetometer based on saturated absorption spectroscopy on the extreme angular-momentum states of the cesium D2 line. With key features including continuous readout, high sampling rate, and sensitivity and accuracy in the ppm range, it represents a competitive alternative to conventional techniques for measuring magnetic fields of several teslas. The prototype has four small separate field probes, and all support electronics and optics are fitted into a single 19-inch rack to make it compact, mobile, and robust. The field probes are fiber coupled and made from nonmetallic components, allowing them to be easily and safely positioned inside a 7 T MRI scanner. We demonstrate the capabilities of this magnetometer by measuring two different MRI sequences, and we show how it can be used to reveal imperfections in the gradient coil system, to highlight the potential applications in medical MRI. We propose the term EXAAQ (EXtreme Angular-momentum Absorption-spectroscopy Quantum) magnetometry, for this novel method. Published by the American Physical Society 2024

Funder

Innovation Fund Denmark

European Union’s Horizon 2020

Villum Fonden

The Danish Agency for Science, Technology and Innovation

Danish Quantum Innovation Center

John and Birthe Meyer Foundation

Publisher

American Physical Society (APS)

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