Parallel high-frequency magnetic sensing with an array of flux transformers and multi-channel optically pumped magnetometer for hand MRI application

被引:8
作者
Kim, Young Jin [1 ]
Savukov, Igor [1 ]
机构
[1] Los Alamos Natl Lab, MPA Quantum, POB 1663,MS D454, Los Alamos, NM 87545 USA
关键词
ATOMIC MAGNETOMETER; IMAGE ACQUISITION; SPIN RELAXATION;
D O I
10.1063/5.0021284
中图分类号
O59 [应用物理学];
学科分类号
摘要
We investigate an approach for parallel high-frequency magnetic sensing based on a multi-channel radio frequency (RF) optically pumped magnetometer (OPM) coupled to multiple flux transformers (FTs) with a focus on hand magnetic resonance imaging (MRI) application at ultra-low field (ULF). Multiple RF OPM sensing channels are realized by using a single large-area alkali-metal vapor cell and two laser beams for pumping and probing, shared for all the channels. This design leads to significant cost reduction when multi-channel sensing is desirable, as in the case of ULF MRI. The FT, composed of two connected coils, serves as a transmitter of a target magnetic field to the OPM, while decoupling the OPM from untargeted magnetic fields in the sensing area that can limit the OPM performance. For hand MRI application, theoretical and numerical analysis is performed to determine an optimal geometry for the FT array that could improve signal-to-noise ratio (SNR) and sufficiently reduce crosstalk between FTs. We estimate that the optimized multi-channel FT-OPM sensor can achieve a magnetic field sensitivity of the order of 1 fT/Hz(1/2) above 100kHz, which would be sufficient for 1mm resolution MRI. In general, the multi-channel capability enables simultaneous magnetic measurements, thus reducing the sensing time and improving the SNR, and we anticipate many applications of the multi-channel FT-OPM sensor beyond the targeted here hand MRI: anatomical parallel ULF MRI of the human brain and other parts of the body, airport security screening, magnetic material imaging, and many others.
引用
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页数:9
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共 24 条
  • [1] Austin R, 2014, NATO SCI PEACE SEC B, P99, DOI [10.1007/978-94-007-7265-6__9, 10.1007/978-94-007-7265-6_9]
  • [2] Optical magnetometry
    Budker, Dmitry
    Romalis, Michael
    [J]. NATURE PHYSICS, 2007, 3 (04) : 227 - 234
  • [3] RETRACTED: SQUID-detected ultra-low field MRI (Retracted Article)
    Espy, Michelle
    Matlashov, Andrei
    Volegov, Petr
    [J]. JOURNAL OF MAGNETIC RESONANCE, 2013, 229 : 127 - 141
  • [4] SPIN RELAXATION OF RUBIDIUM ATOMS IN SUDDEN AND QUASIMOLECULAR COLLISIONS WITH LIGHT NOBLE-GAS ATOMS
    FRANZ, FA
    VOLK, C
    [J]. PHYSICAL REVIEW A, 1976, 14 (05): : 1711 - 1728
  • [5] SPIN RELAXATION OF OPTICALLY ALIGNED RUBIDIUM VAPOR
    FRANZEN, W
    [J]. PHYSICAL REVIEW, 1959, 115 (04): : 850 - 856
  • [6] PARALLEL IMAGE ACQUISITION FROM NONINTERACTING LOCAL COILS
    HYDE, JS
    JESMANOWICZ, A
    FRONCISZ, W
    KNEELAND, JB
    GRIST, TM
    CAMPAGNA, NF
    [J]. JOURNAL OF MAGNETIC RESONANCE, 1986, 70 (03): : 512 - 517
  • [7] Massively parallel MRI detector arrays
    Keil, Boris
    Wald, Lawrence L.
    [J]. JOURNAL OF MAGNETIC RESONANCE, 2013, 229 : 75 - 89
  • [8] Multi-channel atomic magnetometer for magnetoencephalography: A configuration study
    Kim, Kiwoong
    Begus, Samo
    Xia, Hui
    Lee, Seung-Kyun
    Jazbinsek, Vojko
    Trontelj, Zvonko
    Romalis, Michael V.
    [J]. NEUROIMAGE, 2014, 89 : 143 - 151
  • [9] Polarization enhancement technique for nuclear quadrupole resonance detection
    Kim, Y. J.
    Karaulanov, T.
    Matlashov, A. N.
    Newman, S.
    Urbaitis, A.
    Volegov, P.
    Yoder, J.
    Espy, M. A.
    [J]. SOLID STATE NUCLEAR MAGNETIC RESONANCE, 2014, 61-62 : 35 - 38
  • [10] The first report of genetic variations in the chicken prion protein gene
    Kim, Yong-Chan
    Jeong, Min-Ju
    Jeong, Byung-Hoon
    [J]. PRION, 2018, 12 (3-4) : 197 - 203