IP Library Granted Patent US 11,933,865
Granted Patent B2
US 11,933,865 · App. 17/794,124 · Granted Mar 19, 2024

Magnetic field measurement apparatus and magnetic field measurement method

Inventors: Yoshiharu Yoshii (Natori, JP); Masateru Hashimoto (Komoto, JP); Tsutomu Ootsuka (Natori, JP); Shingo Hamada (Natori, JP); Yuki Takemura (Kyoto, JP); Kan Hayashi (Kyoto, JP); Norikazu Mizuochi (Kyoto, JP)
Assignees: SUMIDA CORPORATION; Kyoto University
G01R33/24
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Quick Facts
Patent No.
US 11,933,865
App. No.
17/794,124
Granted
Mar 19, 2024
Kind
B2
Abstract

A magnetic resonance member 1 includes a crystal structure and is capable of electron spin quantum operations with microwaves of different frequencies corresponding to arrangement orientations of a vacancy and an impurity in a crystal lattice. A magnetic field transmission unit 4 senses a measurement target magnetic field at plural measurement positions different from each other, and applies application magnetic fields corresponding to the measurement target magnetic field sensed at the plural measurement positions to the magnetic resonance member 1 along respective different directions corresponding to the aforementioned arrangement orientations. A measurement control unit 21 controls a high frequency power supply 12 , and determines detection values detected by a detecting device (an irradiating device 5 and a light receiving device 6 ) of the physical phenomena corresponding to the plural measurement positions. A calculation unit 22 calculates the measurement target magnetic field at the plural measurement positions on the basis of the detection values.

Claims (17)

1. A magnetic field measurement apparatus, comprising:

a magnetic resonance member that includes a crystal structure and capable of electron spin quantum operations with microwaves of different frequencies corresponding to arrangement orientations of a vacancy and an impurity in a crystal lattice;

a high-frequency magnetic field generator that applies a magnetic field as a microwave to the magnetic resonance member;

a high frequency power supply that causes the high-frequency magnetic field generator to conduct a current for the microwave;

a magnetic field transmission unit that senses a measurement target magnetic field at plural measurement positions different from each other, and applies application magnetic fields corresponding to the measurement target magnetic field sensed at the plural measurement positions to the magnetic resonance member along respective different directions corresponding to the arrangement orientations;

a detecting device that detects physical phenomena corresponding to the application magnetic fields using the magnetic resonance member;

a measurement control unit that controls the high frequency power supply, and determines detection values detected by the detecting device of the physical phenomena corresponding to the plural measurement positions; and

a calculation unit that calculates the measurement target magnetic field at the plural measurement positions on the basis of the detection values.

2. The magnetic field measurement apparatus according to claim 1 , wherein the measurement control unit (a) controls the high frequency power supply in accordance with a predetermined measurement sequence and determines a detection value of a physical phenomenon corresponding to one of the plural measurement positions, and (b) sequentially performs the measurement sequence plural times of which the number is the same as the number of plural measurement positions and determines the detection values of the physical phenomena corresponding to the plural measurement positions.

3. The magnetic field measurement apparatus according to claim 2 , wherein the measurement control unit sets frequencies of currents of the high frequency power supply in the measurement sequence as frequencies corresponding to the measurement positions.

4. The magnetic field measurement apparatus according to claim 1 , wherein the magnetic field transmission unit is a flux transformer that includes primary coils and secondary coils, senses the measurement target magnetic field at the plural measurement positions different from each other using the primary coils and applies the application magnetic fields to the magnetic resonance member using the secondary coils, along respective different directions corresponding to the arrangement orientations.

5. The magnetic field measurement apparatus according to claim 2 , wherein the magnetic field transmission unit is a flux transformer that includes primary coils and secondary coils, senses the measurement target magnetic field at the plural measurement positions different from each other using the primary coils and applies the application magnetic fields to the magnetic resonance member using the secondary coils, along respective different directions corresponding to the arrangement orientations.

6. The magnetic field measurement apparatus according to claim 3 , wherein the magnetic field transmission unit is a flux transformer that includes primary coils and secondary coils, senses the measurement target magnetic field at the plural measurement positions different from each other using the primary coils and applies the application magnetic fields to the magnetic resonance member using the secondary coils, along respective different directions corresponding to the arrangement orientations.

7. A magnetic field measurement method, comprising the steps of:

(a) sensing a measurement target magnetic field at plural measurement position different from each other, and (b) applying application magnetic fields corresponding to the measurement target magnetic field sensed at the plural measurement positions to a magnetic resonance member along respective different directions corresponding to arrangement orientations of a vacancy and an impurity in a crystal lattice of the magnetic resonance member, the magnetic resonance member including a crystal structure and capable of electron spin quantum operations with microwaves of different frequencies corresponding to the arrangement orientations;

detecting physical phenomena corresponding to the application magnetic fields using the magnetic resonance member, and determining detection values of the physical phenomena corresponding to the plural measurement positions; and

calculating the measurement target magnetic field at the plural measurement positions on the basis of the detection values.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 20, 2022
From: YOSHII, YOSHIHARU; HASHIMOTO, MASATERU; OOTSUKA, TSUTOMU; HAMADA, SHINGO
To: SUMIDA CORPORATION
Reel/Frame 060567/0690 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 20, 2022
From: TAKEMURA, YUKI; HAYASHI, KAN; MIZUOCHI, NORIKAZU
To: KYOTO UNIVERSITY
Reel/Frame 060567/0980 →
Priority Claims (1)
JP 2020-032685 · Feb 28, 2020 · national
Continuity (1)
Related Publication 20230051777A1 · Feb 16, 2023
Cited By (1)
US 12,625,206