IP Library › Granted Patent US 11,199,595
Granted Patent B2
US 11,199,595 · App. 17/071,530 · Granted Dec 14, 2021

Radio frequency atomic magnetometer through differential magnetic field polarization selection and operation method thereof

Inventors: Hyunjoon Lee (Busan, KR); In Kui Cho (Daejeon, KR); Jang Yeol Kim (Daejeon, KR); Jaewoo Lee (Daejeon, KR); Ho Jin Lee (Daejeon, KR); Sang-Won Kim (Daejeon, KR); Seong-Min Kim (Daejeon, KR); Jung Ick Moon (Daejeon, KR); Woo Cheon Park (Daejeon, KR); Je Hoon Yun (Daejeon, KR); Dong Won Jang (Daejeon, KR)
Assignee: ELECTRONICS AND TELECOMMUNICATIONS RESEARCH INSTITUTE
G01R33/26
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Quick Facts
Patent No.
US 11,199,595
App. No.
17/071,530
Granted
Dec 14, 2021
Kind
B2
Abstract

The atomic magnetometer includes a light source device configured to output a linearly polarized irradiation light and a circularly polarized pump light, a first vapor cell including an alkali metal atom, receiving the linearly polarized irradiation light, and outputting a first transmitted light, a second vapor cell including an alkali metal atom, receiving the linearly polarized irradiation light, and outputting a second transmitted light, a magnetic field application device configured to apply a bias magnetic field in opposite directions to the first vapor cell and the second vapor cell, and a measuring device configured to obtain the magnetic field signal based on a differentiation of a first polarization rotation signal corresponding to a polarization state of the first transmitted light and a second polarization rotation signal corresponding to a polarization state of the second transmitted light.

Claims (40)

1. An atomic magnetometer for measuring a magnetic field signal, the atomic magnetometer comprising:

a light source device configured to output a linearly polarized irradiation light and a circularly polarized pump light;

a first vapor cell comprising an alkali metal atom magnetically polarized by the circularly polarized pump light, receiving the linearly polarized irradiation light, and outputting a first transmitted light;

a second vapor cell comprising an alkali metal atom magnetically polarized by the circularly polarized pump light, receiving the linearly polarized irradiation light, and outputting a second transmitted light;

a magnetic field application device configured to apply a bias magnetic field in opposite directions to the first vapor cell and the second vapor cell; and

a measuring device configured to obtain the magnetic field signal based on a differentiation of a first polarization rotation signal corresponding to a polarization state of the first transmitted light and a second polarization rotation signal corresponding to a polarization state of the second transmitted light.

2. The atomic magnetometer of claim 1 , wherein the light source device comprises:

a pump light source configured to output the circularly polarized pump light; and

an irradiation light source configured to output the linearly polarized irradiation light.

3. The atomic magnetometer of claim 1 , wherein the alkali metal atom is any one of potassium (K), rubidium (Rb), and cesium (Cs).

4. The atomic magnetometer of claim 1 , wherein the first vapor cell and the second vapor cell further contain a buffer gas.

5. The atomic magnetometer of claim 4 , wherein the buffer gas is a quenching gas using any one of helium (He), xenon (Xe), and nitrogen (N).

6. The atomic magnetometer of claim 1 , further comprising:

a first temperature adjustment device configured to adjust a temperature of the first vapor cell and located outside the first vapor cell; and

a second temperature adjustment device configured to adjust a temperature of the second vapor cell and located outside the second vapor cell.

7. The atomic magnetometer of claim 1 , wherein the magnetic field application device comprises:

a pair of first bias magnetic field generating coils located on both sides of the first vapor cell to apply a bias magnetic field to the first vapor cell;

a pair of second bias magnetic field generating coils located on both sides of the second vapor cell to apply a bias magnetic field to the second vapor cell; and

a bias magnetic field controller configured to control magnetic fields generated by the pair of first bias magnetic field generating coils and the pair of second bias magnetic field generating coils.

8. The atomic magnetometer of claim 1 , wherein a direction of the bias magnetic field is parallel to a magnetic polarization direction of the alkali metal atom.

9. The atomic magnetometer of claim 1 , wherein the magnetic field signal is circularly polarized and output in an antenna.

10. An operation method of an atomic magnetometer for measuring a magnetic field signal, the method comprising:

optically pumping alkali metal atoms by providing a circularly polarized pump light to a first vapor cell and a second vapor cell comprising the alkali metal atoms;

applying a bias magnetic field in opposite directions to the first vapor cell and the second vapor cell comprising the optically pumped alkali metal atoms;

providing a linearly polarized irradiation light to the first vapor cell and the second vapor cell to which the bias magnetic field is applied;

detecting a first polarization rotation signal based on a polarization state of a first transmitted light output by the first vapor cell provided with the linearly polarized irradiation light;

detecting a second polarization rotation signal based on a polarization state of a second transmitted light output by the second vapor cell provided with the linearly polarized irradiation light; and

obtaining the magnetic field signal based on a differentiation of the first polarization rotation signal and the second polarization rotation signal.

11. The operation method of claim 10 , wherein the optically pumping comprises providing a circularly polarized pump light to the first vapor cell and the second vapor cell through a pump light source, and

the providing of the irradiation light comprises providing a linearly polarized irradiation light to the first vapor cell and the second vapor cell to which the bias magnetic field is applied through an irradiation light source.

12. The operation method of claim 10 , wherein the alkali metal atoms are any one of potassium (K), rubidium (Rb), and cesium (Cs).

13. The operation method of claim 10 , wherein the first vapor cell and the second vapor cell further contain a buffer gas.

14. The operation method of claim 13 , wherein the buffer gas is a quenching gas using any one of helium (He), xenon (Xe), and nitrogen (N).

15. The operation method of claim 10 , further comprising:

adjusting a temperature of the first vapor cell through a first temperature adjustment device located outside the first vapor cell; and

adjusting a temperature of the second vapor cell through a second temperature adjustment device located outside the second vapor cell.

16. The operation method of claim 10 , wherein the applying of the bias magnetic field comprises:

controlling, through a bias magnetic field controller, magnetic fields generated by a pair of first bias magnetic field generating coils located on both sides of the first vapor cell and a pair of second bias magnetic field generating coils located on both sides of the second vapor cell.

17. The operation method of claim 10 , wherein a direction of the bias magnetic field is parallel to a magnetic polarization direction of the alkali metal atoms.

18. The operation method of claim 10 , wherein the magnetic field signal is circularly polarized and output in an antenna.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 15, 2020
From: LEE, HYUNJOON; CHO, IN KUI; KIM, JANG YEOL; LEE, JAEWOO; LEE, HO JIN; KIM, SANG-WON; KIM, SEONG-MIN; MOON, JUNG ICK; PARK, WOO CHEON; YUN, JE HOON; JANG, DONG WON
To: ELECTRONICS AND TELECOMMUNICATIONS RESEARCH INSTITUTE
Reel/Frame 054069/0865 →
Priority Claims (2)
KR 10-2019-0127908 · Oct 15, 2019 · national
KR 10-2020-0120620 · Sep 18, 2020 · national
Continuity (1)
Related Publication 20210109173A1 · Apr 15, 2021
Cited By (1)
US 12,638,519