Claims
- 1. A gradiometer integrating pickup coils comprising:
a first pickup coil fabricated of a thin film on a substrate, said first pickup coil having a closed loop formed by a first loop; a second pickup coil fabricated of a thin film on said substrate, said second pickup coil having a closed loop formed by a second loop; and a differential SQUID fabricated of a thin film on said substrate and magnetically coupled to said first and second pickup coils, said differential SQUID including a first and a second superconducting loop connected in series or in parallel, said first pickup coil having a first input coil in said first loop for inputting magnetic flux generated by a first current induced in said first pickup coil by a magnetic field in a z-direction perpendicular to the surface of said substrate into said first superconducting loop, said second pickup coil having a second input coil in said second loop for inputting magnetic flux generated by a second current induced in said second pickup coil by the magnetic field in the z-direction into said second superconducting loop,
wherein a first segment resulting from projecting a segment connecting the center of said first pickup coil with the center of said second pickup coil perpendicularly onto the surface of said substrate overlaps a second segment resulting from projecting a segment connecting the center of said first superconducting loop with the center of said second superconducting loop perpendicularly onto the surface of said substrate, a midpoint of said first segment matches a midpoint of said second segment, and said gradiometer integrating pickup coils is configured to detect a field gradient in the z-direction with respect to an x-direction and a y-direction parallel with the surface of said substrate and perpendicular to the z-direction.
- 2. A gradiometer integrating pickup coils comprising:
a first pickup coil fabricated of a thin film on a substrate, said first pickup coil having a closed loop formed by a first loop; a second pickup coil fabricated of a thin film on said substrate, said second pickup coil having a closed loop formed by a second loop; a third pickup coil fabricated of a thin film on said substrate, said third pickup coil having a closed loop formed by a third loop; a fourth pickup coil fabricated of a thin film on said substrate, said fourth pickup coil having a closed loop formed by a fourth loop; a first differential SQUID fabricated of a thin film on said substrate and magnetically coupled to said first and second pickup coils, said first differential SQUID including a first and a second superconducting loop connected in series or in-parallel; and a second differential SQUID fabricated of a thin film on said substrate and magnetically coupled to said third and fourth pickup coils, said second differential SQUID including a third and a fourth superconducting loop connected in series or in parallel, said first pickup coil having a first input coil in said first loop for inputting magnetic flux generated by a first current induced in said first pickup coil by a magnetic field in a z-direction perpendicular to the surface of said substrate into said first superconducting loop, said second pickup coil having a second input coil in said second loop for inputting magnetic flux generated by a second current induced in said second pickup coil by the magnetic field in the z-direction into said second superconducting loop, said third pickup coil having a third input coil in said third loop for inputting magnetic flux generated by a third current induced in said third pickup coil by the magnetic field in the z-direction into said third superconducting loop, and said fourth pickup coil having a fourth input coil in said fourth loop for inputting magnetic flux generated by a fourth current induced in said fourth pickup coil by the magnetic field in the z-direction into said fourth superconducting loop,
wherein a first segment resulting from projecting a segment connecting the center of said first pickup coil with the center of said second pickup coil perpendicularly onto the surface of said substrate overlaps a second segment resulting from projecting a segment connecting the center of said first superconducting loop with the center of said second superconducting loop perpendicularly onto the surface of said substrate, a third segment resulting from projecting a segment connecting the center of said third pickup coil with the center of said fourth pickup coil perpendicularly onto the surface of said substrate overlaps a fourth segment resulting from projecting a segment connecting the center of said third superconducting loop with the center of said fourth superconducting loop perpendicularly onto the surface of said substrate, said third segment and said fourth segment cross at right angles, a midpoint of said first segment, a midpoint of said second segment, a midpoint of said third segment, and a midpoint of said fourth segment match one another, and said gradiometer integrating pickup coils is configured to detect a field gradient in the z-direction with respect to an x-direction and a y-direction parallel with the surface of said substrate and perpendicular to the z-direction.
- 3. A gradiometer integrating pickup coils comprising:
a first pickup coil fabricated of a thin film on a substrate, said first pickup coil having a closed loop formed by a first loop; a second pickup coil fabricated of a thin film on said substrate, said second pickup coil having a closed loop formed by a second loop; and a differential SQUID fabricated of a thin film on said substrate and magnetically coupled to said first and second pickup coils, said differential SQUID including a first and a second superconducting loop connected in series or in parallel,
wherein a first segment resulting from projecting a segment connecting the center of said first pickup coil with the center of said second pickup coil perpendicularly onto the surface of said substrate overlaps a second segment resulting from projecting a segment connecting the center of said first superconducting loop with the center of said second superconducting loop perpendicularly onto the surface of said substrate, a midpoint of said first segment matches a midpoint of said second segment, and said gradiometer integrating pickup coils is configured to detect a field gradient in a z-direction with respect to an x-direction or a y-direction parallel with the surface of said substrate and perpendicular to the z-direction.
- 4. A gradiometer integrating pickup coils comprising:
a first pickup coil fabricated of a thin film on a substrate, said first pickup coil having a closed loop formed by a first loop; a second pickup coil fabricated of a thin film on said substrate, said second pickup coil having a closed loop formed by a second loop; a third pickup coil fabricated of a thin film on said substrate, said third pickup coil having a closed loop formed by a third loop; a fourth pickup coil fabricated of a thin film on said substrate, said fourth pickup coil having a closed loop formed by a fourth loop; a first differential SQUID fabricated of a thin film on said substrate and magnetically coupled to said first and second pickup coils, said first differential SQUID including a first and a second superconducting loop connected in series or in parallel; and a second differential SQUID fabricated of a thin film on said substrate and magnetically coupled to said third and fourth pickup coils, said second differential SQUID including a third and a fourth superconducting loop connected in series or in parallel,
wherein a first segment resulting from projecting a segment connecting the center of said first pickup coil with the center of said second pickup coil perpendicularly onto the surface of said substrate overlaps a second segment resulting from projecting a segment connecting the center of said first superconducting loop with the center of said second superconducting loop perpendicularly onto the surface of said substrate, a third segment resulting from projecting a segment connecting the center of said third pickup coil with the center of said fourth pickup coil perpendicularly onto the surface of said substrate overlaps a fourth segment resulting from projecting a segment connecting the center of said third superconducting loop with the center of said fourth superconducting loop perpendicularly onto the surface of said substrate, said third segment and said fourth segment cross at right angles, a midpoint of said first segment, a midpoint of said second segment, a midpoint of said third segment, and a midpoint of said fourth segment match one another, and said gradiometer integrating pickup coils is configured to detect a field gradient in a z-direction with respect to an x-direction and a y-direction parallel with the surface of said substrate and perpendicular to the z-direction.
- 5. A gradiometer integrating pickup coils comprising:
a first and a second pickup coil fabricated of a thin film on a substrate; and a differential SQUID fabricated of a thin film on said substrate and magnetically coupled to said first and second pickup coils, said differential SQUID including a first and a second superconducting loop connected in series or in parallel,
wherein a first segment resulting from projecting a segment connecting the center of said first pickup coil with the center of said second pickup coil perpendicularly onto the surface of said substrate overlaps a second segment resulting from projecting a segment connecting the center of said first superconducting loop with the center of said second superconducting loop perpendicularly onto the surface of said substrate, a midpoint of said first segment matches a midpoint of said second segment, and said gradiometer integrating pickup coils is configured to detect a field gradient in a z-direction respect to an x-direction or a y-direction parallel with the surface of said substrate and perpendicular to the z-direction perpendicular to the surface of said substrate.
- 6. A gradiometer integrating pickup coils comprising:
a first, a second, a third and a fourth pickup coil fabricated of a thin film on a substrate; a first differential SQUID fabricated of a thin film on said substrate and magnetically coupled to said first and second pickup coils, said first differential SQUID including a first and a second superconducting loop connected in series or in parallel; and a second differential SQUID fabricated of a thin film on said substrate and magnetically coupled to said third and fourth pickup coils, said second differential SQUID including a third and a fourth superconducting loop connected in series or in parallel,
wherein a first segment resulting from projecting a segment connecting the center of said first pickup coil with the center of said second pickup coil perpendicularly onto the surface of said substrate overlaps a second segment resulting from projecting a segment connecting the center of said first superconducting loop with the center of said second superconducting loop perpendicularly onto the surface of said substrate, a third segment resulting from projecting a segment connecting the center of said third pickup coil with the center of said fourth pickup coil perpendicularly onto the surface of said substrate overlaps a fourth segment resulting from projecting a segment connecting the center of said third superconducting loop with the center of said fourth superconducting loop perpendicularly onto the surface of said substrate, said third segment and said fourth segment cross at right angles, a midpoint of said first segment, a midpoint of said second segment, a midpoint of said third segment, and a midpoint of said fourth segment match one another, and said gradiometer integrating pickup coils is configured to detect a field gradient in the z-direction with respect to an x-direction and a y-direction parallel with the surface of said substrate and perpendicular to the z-direction perpendicular to the surface of said substrate.
- 7. A gradiometer integrating pickup coils comprising:
a first pickup coil fabricated of a thin film on a substrate, said first pickup coil having a first and a second pickup loop connected to have an 8-figured shape as a whole such that currents flow through said first and second pickup loops in directions opposite to each other; a second pickup coil fabricated of a thin film on said substrate, said second pickup coil having a third and a fourth pickup loop connected to have an 8-figured shape as a whole such that currents flow through said third and fourth pickup loops in directions opposite to each other; a first differential SQUID fabricated of a thin film on said substrate and magnetically coupled to said first and second pickup coils, said first differential SQUID including a first and a second superconducting loop connected in series or in parallel; and a second differential SQUID fabricated of a thin film on said substrate and magnetically coupled to said third and fourth pickup coils, said second differential SQUID including a third and a fourth superconducting loop connected in series or in parallel,
wherein a first segment resulting from projecting a segment connecting the center of said first pickup loop with the center of said second pickup loop perpendicularly to the surface of said substrate overlaps a second segment resulting from projecting a segment connecting the center of said first superconducting loop with the center of said second superconducting loop perpendicularly to the surface of said substrate, a third segment resulting from projecting a segment connecting the center of said third pickup loop with the center of said fourth pickup loop perpendicular to the surface of said substrate overlaps a fourth segment resulting from projecting a segment connecting the center of said third superconducting loop with the center of said fourth superconducting loop perpendicular to the surface of said substrate, said third segment and said fourth segment cross at right angles, a midpoint of said first segment, a midpoint of said second segment, a midpoint of said third segment, and a midpoint of said fourth segment match one another, and said gradiometer integrating pickup coils is configured to detect a field gradient in the z-direction with respect to an x-direction and a y-direction parallel with the surface of said substrate and perpendicular to the z-direction perpendicular to the surface of said substrate.
- 8. A gradiometer integrating pickup coils comprising:
a pickup coil fabricated of a thin film on a substrate, said pickup coil having a first and a second pickup loop connected to have an 8-figured shape as a whole such that currents flow through said first and second pickup loops in directions opposite to each other; and a differential SQUID fabricated of a thin film on said substrate and magnetically coupled to said first and second pickup coils, said differential SQUID including a first and a second superconducting loop connected in series or in parallel,
wherein a first segment resulting from projecting a segment connecting the center of said first pickup loop with the center of said second pickup loop perpendicularly to the surface of said substrate overlaps a second segment resulting from projecting a segment connecting the center of said first superconducting loop and the center of said second superconducting loop perpendicularly to the surface of said substrate, a midpoint of said first segment and a midpoint of said second segment match one another, and said gradiometer integrating pickup coils is configured to detect a field gradient in the z-direction with respect to an x-direction or a y-direction parallel with the surface of said substrate and perpendicular to the z-direction perpendicular to the surface of said substrate.
- 9. A gradiometer integrating pickup coils comprising:
a first and a second pickup coil each formed of a superconducting loop connected in series or in parallel; and a differential SQUID fabricated of a thin film on a substrate, said differential SQUID having a plurality of superconducting loops connected in parallel with said first and second pickup coils, respectively,
wherein said first pickup coil and said second pickup coil are in parallel with the surface of said substrate, and symmetric about an x-axis and a y-axis perpendicular to a z-axis perpendicular to the surface of said substrate, and said gradiometer integrating pickup coils is configured to detect a field gradient in the z-direction with respect to the x-direction or the y-direction.
- 10. A gradiometer integrating pickup coils comprising:
a first and a second pickup coil each formed of a superconducting loop connected in series or in parallel; a first differential SQUID fabricated of a thin film on a substrate, said first differential SQUID having a plurality of superconducting loops connected in parallel with said first and second pickup coils, respectively; a third and a fourth pickup coil each formed of a superconducting loop connected in series or in parallel; and a second differential SQUID fabricated of a thin film on said substrate, said second differential SQUID having a plurality of superconducting loops connected in parallel with said third and fourth pickup coils, respectively,
wherein a first segment resulting from projecting a segment connecting the center of said first pickup coil and the center of said second pickup coil perpendicularly projected onto the surface of said substrate and a second segment resulting from projecting a segment connecting the center of said third pickup coil and the center of said fourth pickup coil perpendicularly projected onto the surface of said substrate cross at right angles, a midpoint of said first segment matches a midpoint of said second segment, and said gradiometer integrating pickup coils is configured to detect a field gradient in the z-direction with respect to an x-direction and a y-direction parallel with the surface of said substrate and perpendicular to a z-direction perpendicular to the surface of said substrate.
- 11. A magnetic field measurement system using said gradiometer integrating pickup coils according to claim 1.
Priority Claims (1)
Number |
Date |
Country |
Kind |
2001-044426 |
Feb 2001 |
JP |
|
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present application is relevant to U.S. patent application Ser. No. being filed by Daisuke Suzuki, Tsuyoshi Miyashita, Akihiko Kandori, Keiji Tsukada and Kouich Yokosawa, and assigned to the present assignee, based on Japanese Patent Application No. 2001-044424 filed on Feb. 21, 2001, and U.S. patent application Ser. No. being filed by Daisuke Suzuki, Atsushi Ninomiya, Tsuyoshi Miyashita, Akihiko Kandori, Keiji Tsukada and Kouich Yokosawa, and assigned to the present assignee, based on Japanese Patent Application No. 2000-334921 filed on Oct. 30, 2000. The contents of these applications are incorporated herein by reference.