IP Library › Granted Patent US 12,733,856
Granted Patent B2
US 12,733,856 · App. 18/765,392 · Granted Sep 15, 2026

Optically pumped magnetometer and magnetoencephalograph

Inventors: Akinori Saito (Hamamatsu, JP); Takenori Oida (Hamamatsu, JP); Takahiro Moriya (Hamamatsu, JP); Motohiro Suyama (Hamamatsu, JP); Yosuke Ito (Kyoto, JP); Hiroyuki Ueda (Kyoto, JP)
Assignees: HAMAMATSU PHOTONICS K.K.; Kyoto University
A61B5/245G01R33/26A61B2562/0223
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Quick Facts
Patent No.
US 12,733,856
App. No.
18/765,392
Granted
Sep 15, 2026
Kind
B2
Abstract

An optically pumped magnetometer includes a cell, a pump light incidence unit causing pump light to be incident on a plurality of sensitivity regions inside the cell in a first direction, a probe light incidence unit causing probe light to be incident on the sensitivity regions in a direction intersecting the first direction, bias magnetic field coils applying a bias magnetic field to the inside of the cell and determining a resonance frequency of the electron spins, an electron spin tilting unit tilting a rotation axis direction of the electron spins in a direction perpendicular to the first direction, an optical sensor detecting the probe light; and a magnetic field measuring unit measuring magnetic field strengths related to the sensitivity regions, wherein the bias magnetic field coils respectively apply a plurality of the bias magnetic fields having strengths different from each other to the plurality of corresponding sensitivity regions.

Claims (68)

1 . An optically pumped magnetometer comprising:

a cell configured to be filled with alkali metal vapor;

a pump light incidence unit including a pump laser, configured to cause pump light for pumping alkali metal atoms constituting the alkali metal vapor to be incident on a plurality of sensitivity regions inside the cell in a first direction;

a probe light incidence unit including a probe laser, configured to cause probe light for detecting change in electron spins in a pumped state of the alkali metal atoms to be incident on the plurality of sensitivity regions in a direction intersecting the first direction;

bias magnetic field coils configured to apply a bias magnetic field in the first direction to the inside of the cell and determine a resonance frequency of the electron spins;

an electron spin tilting unit including a tilting coil, configured to tilt a rotation axis direction of the electron spins in a direction perpendicular to the first direction;

an optical sensor configured to detect the probe light having passed through the sensitivity regions;

a magnetic field measuring unit configured to measure magnetic field strengths related to the sensitivity regions based on an output of the optical sensor,

wherein the bias magnetic field coils respectively apply a plurality of the bias magnetic fields having strengths different from each other to the plurality of corresponding sensitivity regions,

the plurality of sensitivity regions include at least a first sensitivity region and a second sensitivity region, and

the bias magnetic field coils include

a first coil corresponding to the first sensitivity region, and

a second coil corresponding to the second sensitivity region; and

a substrate configured to be provided with the first coil and the second coil,

wherein a passing hole allowing the pump light to pass therethrough is formed in the substrate.

2 . The optically pumped magnetometer according to claim 1 ,

wherein the electron spin tilting unit radiates RF signals having the same frequencies as the resonance frequencies.

3 . The optically pumped magnetometer according to claim 1 ,

wherein the electron spin tilting unit radiates pulsed light.

4 . The optically pumped magnetometer according to claim 1 ,

wherein the magnetic field measuring unit measures the magnetic field strengths based on a difference between outputs of the optical sensor corresponding to the two adjacent sensitivity regions.

5 . A magnetoencephalograph comprising:

the optically pumped magnetometer according to claim 1 configured to be provided in a manner of being able to be disposed around the head of a test object and measure a strength of a magnetic field emitted from the test object.

6 . An optically pumped magnetometer comprising:

a cell configured to be filled with alkali metal vapor;

a pump light incidence unit including a pump laser, configured to cause pump light for pumping alkali metal atoms constituting the alkali metal vapor to be incident on a plurality of sensitivity regions inside the cell in a first direction;

a probe light incidence unit including a probe laser, configured to cause probe light for detecting change in electron spins in a pumped state of the alkali metal atoms to be incident on the plurality of sensitivity regions in a direction intersecting the first direction;

bias magnetic field coils configured to apply a bias magnetic field in the first direction to the inside of the cell and determine a resonance frequency of the electron spins;

an electron spin tilting unit including a tilting coil, configured to tilt a rotation axis direction of the electron spins in a direction perpendicular to the first direction;

an optical sensor configured to detect the probe light having passed through the sensitivity regions; and

a magnetic field measuring unit configured to measure magnetic field strengths related to the sensitivity regions based on an output of the optical sensor,

wherein the bias magnetic field coils respectively apply a plurality of the bias magnetic fields having strengths different from each other to the plurality of corresponding sensitivity regions,

the plurality of sensitivity regions include at least a first sensitivity region and a second sensitivity region,

the bias magnetic field coils include

a first coil corresponding to the first sensitivity region, and

a second coil corresponding to the second sensitivity region,

the first sensitivity region is present in an end portion of the cell, and

the bias magnetic field coils include an extra-cell coil disposed away from the cell when viewed in the first direction and adjacent to the first coil.

7 . An optically pumped magnetometer comprising:

a cell configured to be filled with alkali metal vapor;

a pump light incidence unit including a pump laser, configured to cause pump light for pumping alkali metal atoms constituting the alkali metal vapor to be incident on a plurality of sensitivity regions inside the cell in a first direction;

a probe light incidence unit including a probe laser, configured to cause probe light for detecting change in electron spins in a pumped state of the alkali metal atoms to be incident on the plurality of sensitivity regions in a direction intersecting the first direction;

bias magnetic field coils configured to apply a bias magnetic field in the first direction to the inside of the cell and determine a resonance frequency of the electron spins;

an electron spin tilting unit including a tilting coil, configured to tilt a rotation axis direction of the electron spins in a direction perpendicular to the first direction;

an optical sensor configured to detect the probe light having passed through the sensitivity regions; and

a magnetic field measuring unit configured to measure magnetic field strengths related to the sensitivity regions based on an output of the optical sensor,

wherein the bias magnetic field coils respectively apply a plurality of the bias magnetic fields having strengths different from each other to the plurality of corresponding sensitivity regions,

the plurality of sensitivity regions include a first sensitivity region, a second sensitivity region adjacent to the first sensitivity region, a third sensitivity region adjacent to the second sensitivity region, and a fourth sensitivity region adjacent to the third sensitivity region, and

the bias magnetic field coils include

a pair of first coils disposed with the first sensitivity region sandwiched therebetween in the first direction and formed with a first number of windings in a first rotation direction,

a pair of second coils disposed with the second sensitivity region sandwiched therebetween in the first direction and formed with a second number of windings in the first rotation direction,

a pair of third coils disposed with the third sensitivity region sandwiched therebetween in the first direction and formed with the second number of windings in a second rotation direction opposite to the first rotation direction, and

a pair of fourth coils disposed with the fourth sensitivity region sandwiched therebetween in the first direction and formed with the first number of windings in the second rotation direction.

8 . An optically pumped magnetometer comprising:

a cell configured to be filled with alkali metal vapor;

a pump light incidence unit including a pump laser, configured to cause pump light for pumping alkali metal atoms constituting the alkali metal vapor to be incident on a plurality of sensitivity regions inside the cell in a first direction;

a probe light incidence unit including a probe laser, configured to cause probe light for detecting change in electron spins in a pumped state of the alkali metal atoms to be incident on the plurality of sensitivity regions in a direction intersecting the first direction;

bias magnetic field coils configured to apply a bias magnetic field in the first direction to the inside of the cell and determine a resonance frequency of the electron spins;

an electron spin tilting unit including a tilting coil, configured to tilt a rotation axis direction of the electron spins in a direction perpendicular to the first direction;

an optical sensor configured to detect the probe light having passed through the sensitivity regions; and

a magnetic field measuring unit configured to measure magnetic field strengths related to the sensitivity regions based on an output of the optical sensor,

wherein the bias magnetic field coils respectively apply a plurality of the bias magnetic fields having strengths different from each other to the plurality of corresponding sensitivity regions,

the plurality of sensitivity regions include first to Nth sensitivity regions (Nis an integer equal to or larger than 2),

the bias magnetic field coils respectively apply first to Nth bias magnetic fields to the first to Nth sensitivity regions and have first to Nth resonance frequencies as the resonance frequencies of the first to Nth sensitivity regions, and

the magnetic field measuring unit

acquires a mixed waveform of free induction decay including components of the first to Nth resonance frequencies based on an output of the optical sensor,

filters the mixed waveform through a band pass filter, acquires first to Nth waveforms of free induction decay in respective bands of the first to Nth resonance frequencies, derives respective frequencies of the first to Nth waveforms, and

obtains magnetic field strengths related to the first to Nth sensitivity regions on the basis of the respectively derived frequencies of the first to Nth waveforms.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 8, 2024
From: SAITO, AKINORI; OIDA, TAKENORI; MORIYA, TAKAHIRO; SUYAMA, MOTOHIRO; ITO, YOSUKE; UEDA, HIROYUKI
To: HAMAMATSU PHOTONICS K.K.; KYOTO UNIVERSITY
Reel/Frame 067923/0350 →
Priority Claims (1)
JP 2023-141422 · Aug 31, 2023 · national
Continuity (1)
Related Publication 20250072803A1 · Mar 6, 2025
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