Claims
- 1. A ferromagnetic thin-film based magnetic field detection system, said system comprising:
a substrate; a magnetic field sensor supported on said substrate having a pair of terminating regions between which occurs an electrical resistance having magnitudes dependent on magnetic fields occurring about said magnetic field sensor; and an electrical interconnection conductor and adjacent dielectric support layer both supported on said substrate at least in part between said magnetic field sensor and said substrate, said electrical interconnection conductor electrically connected to one of said terminating regions of said magnetic field sensor.
- 2. The system of claim 1 further comprising a binding molecule layer supported on said substrate in a position adjacent to said magnetic field sensor, said binding molecule layer being capable of selectively binding thereto selected molecular species.
- 3. The system of claim 1 further comprising an electrical insulating layer supported on at least a portion of said substrate, and a polymeric channel base material supported on at least a portion of said electrical insulating layer but spaced apart from said magnetic field sensor.
- 4. The system of claim 1 wherein said magnetic field sensor is substantially covered by an electrical insulating layer having an opening at an outer surface thereof extending toward said substrate to form a recess positioned on that side of said magnetic field sensor opposite said substrate.
- 5. The system of claim 1 wherein said magnetic field sensor and said substrate thereabout are substantially covered by an electrical insulating layer having an opening at an outer surface thereof extending toward said substrate to form a recess positioned to avoid having said magnetic field sensor between itself and said substrate.
- 6. The system of claim 1 wherein said magnetic field sensor is substantially covered by an electrical insulating layer that is less than 1.0 μm thick over said magnetic field sensor on that side of said magnetic field sensor opposite said substrate.
- 7. The system of claim 1 wherein said magnetic field sensor is a first magnetic field sensor and wherein said first field sensors is one of a plurality of magnetic field sensors supported on said substrate each having a pair of terminating regions between which occurs an electrical resistance having magnitudes dependent on magnetic fields occurring thereabout and electrically connected in a bridge circuit formed of two circuit branches each having circuit components including at least one said magnetic field sensor electrically connected in series therein with said circuit branches electrically connected in parallel between terminals suited for electrical connection to a source of electrical energy.
- 8. The system of claim 1 wherein said magnetic field sensor is a first magnetic field sensor and further comprising a second magnetic field sensor supported on said substrate having a pair of terminating regions between which occurs an electrical resistance having magnitudes dependent on magnetic fields occurring about said second magnetic field sensor, said first and second magnetic field sensors each being substantially covered by an electrical insulating layer with said electrical insulating layer having an opening at an outer surface thereof extending toward said substrate to form a recess positioned adjacent said first said magnetic field sensor in which recess said binding molecule layer is provided.
- 9. The system of claim 1 wherein said magnetic field sensor is a first magnetic field sensor and further comprising both a second magnetic field sensor supported on said substrate having a pair of terminating regions between which occurs an electrical resistance having magnitudes dependent on magnetic fields occurring about said second magnetic field sensor and a permeable material mass provided on said substrate, said second magnetic field sensor being positioned adjacent a side of said permeable material mass which side faces said substrate as supported thereon.
- 10. The system of claim 1 further comprising a permeable material mass supported on said substrate with said magnetic field sensor being positioned at an end of said permeable material mass.
- 11. The system of claim 1 further comprising a magnetic field source providing a magnetic field oriented primarily parallel to said substrate and intersecting said magnetic field sensor and said binding molecule layer.
- 12. A ferromagnetic thin-film based magnetic field detection system, said system comprising:
a substrate; a magnetic field sensor supported on said substrate; an electrical insulating layer substantially covering said magnetic field sensor having an opening at an outer surface thereof extending toward said substrate to form a recess positioned adjacent to said magnetic field sensor; and a binding molecule layer supported on said substrate positioned in said recess, said binding molecule layer being capable of selectively binding thereto selected molecular species.
- 13. The system of claim 12 wherein said recess is on that side of said magnetic field sensor opposite said substrate.
- 14. The system of claim 12 wherein said recess is positioned to avoid having said magnetic field sensor between itself and said substrate.
- 15. The system of claim 12 wherein said electrical insulating layer is supported on at least a portion of said substrate, and further comprising a polymeric channel base material supported on at least a portion of said electrical insulating layer but spaced apart from said magnetic field sensor.
- 16. The system of claim 12 wherein said magnetic field sensor is substantially covered by said electrical insulating layer that is less than 1.0 μm thick over said magnetic field sensor in said recess on that side of said magnetic field sensor opposite said substrate.
- 17. The system of claim 12 wherein said magnetic field sensor is a first magnetic field sensor and wherein said first field sensors is one of a plurality of magnetic field sensors supported on said substrate each having a pair of terminating regions between which occurs an electrical resistance having magnitudes dependent on magnetic fields occurring thereabout and electrically connected in a bridge circuit formed of two circuit branches each having circuit components including at least one said magnetic field sensor electrically connected in series therein with said circuit branches electrically connected in parallel between terminals suited for electrical connection to a source of electrical energy.
- 18. The system of claim 12 wherein said magnetic field sensor is a first magnetic field sensor and further comprising both a second magnetic field sensor supported on said substrate having a pair of terminating regions between which occurs an electrical resistance having magnitudes dependent on magnetic fields occurring about said second magnetic field sensor and a permeable material mass provided on said substrate, said second magnetic field sensor being positioned adjacent a side of said permeable material mass which side faces said substrate as supported thereon.
- 19. The system of claim 12 further comprising a permeable material mass supported on said substrate with said magnetic field sensor being positioned at an end of said permeable material mass.
- 20. The system of claim 12 further comprising a magnetic field source providing a magnetic field oriented primarily parallel to said substrate and intersecting said magnetic field sensor and said binding molecule layer.
- 21. A ferromagnetic thin-film based magnetic field detection system, said system comprising:
a substrate; a magnetic field sensor supported on said substrate; a permeable material mass supported on said substrate having a sensing end and a receiving end, said magnetic field sensor being positioned at said permeable material mass sensing end; and a binding molecule layer supported on said substrate positioned at said permeable material mass receiving end, said binding molecule layer being capable of selectively binding thereto selected molecular species.
- 22. The system of claim 21 wherein said permeable material mass has an electrically conductive coil formed thereabout suited for electrical connection to a source of electrical energy.
- 23. The system of claim 21 wherein said magnetic field sensor is one of a plurality of magnetic field sensors supported on said substrate and electrically connected in a bridge circuit formed of two circuit branches each having circuit components including at least one said magnetic field sensor electrically connected in series therein with said circuit branches electrically connected in parallel between terminals suited for electrical connection to a source of electrical energy.
- 24. A ferromagnetic thin-film based magnetic field detection system, said system comprising:
a substrate; a magnetic field sensor supported on said substrate; a permeable material mass supported on said substrate having an end, said magnetic field sensor being positioned at said permeable material mass end; and a binding molecule layer supported on said substrate positioned at said permeable material mass end, said binding molecule layer being capable of selectively binding thereto selected molecular species.
- 25. The system of claim 24 wherein said permeable material mass end is a first end and said permeable material mass also has a second end with said magnetic field sensor being positioned between said permeable material mass first and second ends.
- 26. The system of claim 24 wherein said magnetic field sensor is one of a plurality of magnetic field sensors supported on said substrate and electrically connected in a bridge circuit formed of two circuit branches each having circuit components including at least one said magnetic field sensor electrically connected in series therein with said circuit branches electrically connected in parallel between terminals suited for electrical connection to a source of electrical energy.
- 27. The system of claim 26 wherein said permeable material mass has an electrically conductive coil formed thereabout suited for electrical connection to a source of electrical energy.
- 28. The system of claim 27 wherein said binding molecule layer is positioned adjacent to at least two of said plurality of magnetic field sensors.
- 29. A ferromagnetic thin-film based magnetic field detection system, said system comprising:
a substrate; a magnetic field sensor supported on said substrate; an electrical insulating layer substantially covering said magnetic field sensor is less than 1.0 μm thick over said magnetic field sensor; and a binding molecule layer supported on said substrate positioned adjacent to said magnetic field sensor, said binding molecule layer being capable of selectively binding thereto selected molecular species.
- 30. The system of claim 29 wherein said electrical insulating layer is supported on at least a portion of said substrate, and further comprising a polymeric channel base material supported on at least a portion of said electrical insulating layer but spaced apart from said magnetic field sensor.
- 31. The system of claim 29 wherein said magnetic field sensor is a first magnetic field sensor and wherein said first field sensors is one of a plurality of magnetic field sensors supported on said substrate each having a pair of terminating regions between which occurs an electrical resistance having magnitudes dependent on magnetic fields occurring thereabout and electrically connected in a bridge circuit formed of two circuit branches each having circuit components including at least one said magnetic field sensor electrically connected in series therein with said circuit branches electrically connected in parallel between terminals suited for electrical connection to a source of electrical energy.
- 32. The system of claim 29 wherein said magnetic field sensor is a first magnetic field sensor and further comprising both a second magnetic field sensor supported on said substrate having a pair of terminating regions between which occurs an electrical resistance having magnitudes dependent on magnetic fields occurring about said second magnetic field sensor and a permeable material mass provided on said substrate, said second magnetic field sensor being positioned adjacent a side of said permeable material mass which side faces said substrate as supported thereon.
- 33. The system of claim 29 further comprising a permeable material mass supported on said substrate with said magnetic field sensor being positioned at an end of said permeable material mass.
- 34. The system of claim 29 further comprising a magnetic field source providing a magnetic field oriented primarily parallel to said substrate and intersecting said magnetic field sensor and said binding molecule layer.
- 35. A ferromagnetic thin-film based magnetic field detection system, said system comprising:
a substrate; a magnetic field sensor supported on said substrate having a pair of terminating regions between which occurs an electrical resistance having magnitudes dependent on magnetic fields occurring about said magnetic field sensor; a field generating electrical conductor supported on said substrate adjacent said magnetic field sensor but spaced apart therefrom, said magnetic field sensor positioned in those magnetic fields arising from any field generating electrical currents established in said field generating electrical conductor; and a binding molecule layer supported on said substrate positioned adjacent to said magnetic field sensor, said binding molecule layer being capable of selectively binding thereto selected molecular species.
- 36. The system of claim 35 wherein said magnetic field sensor is positioned between said field generating electrical conductor and said binding molecule layer.
- 37. The system of claim 35 wherein said field generating electrical conductor is positioned between magnetic field sensor and said binding molecule layer.
- 39. The system of claim 35 wherein said magnetic field sensor is positioned a side of said field generating electrical conductor and said binding molecule layer to avoid having said magnetic field sensor between them and between them and any portion of said substrate providing support thereto.
- 40. The system of claim 39 wherein said field generating electrical conductor has portions thereof positioned on opposite sides of magnetic field sensor.
- 41. A ferromagnetic thin-film based magnetic field detection system, said system comprising:
a substrate; a magnetic field sensor supported on said substrate; an electrical insulating layer supported on at least a portion of said substrate; a binding molecule layer supported on said substrate positioned adjacent to said magnetic field sensor, said binding molecule layer being capable of selectively binding thereto selected molecular species; and a polymeric channel base material supported on at least a portion of said electrical insulating layer but spaced apart from said magnetic field sensor.
- 42. The system of claim 41 wherein said polymeric channel base material is an electrical insulating material.
- 43. The system of claim 41 further comprising a bonding material supported on a side of said polymeric channel base material opposite said electrical insulating layer.
- 44. The system of claim 41 further comprising a permeable material mass supported on said substrate with said magnetic field sensor being positioned at an end of said permeable material mass.
- 45. The system of claim 43 wherein said polymeric channel base material is enclosed about said magnetic field sensor except for channel gaps therein extending toward said substrate from said bonding material, and further comprising a lid affixed to said bonding material.
- 46. A method for operating a ferromagnetic thin-film based magnetic field detection system comprising a substrate, a plurality of magnetic field sensors capable of sensing externally applied magnetic fields up to a saturation magnitude value that are supported on said substrate of which at least one can have magnetically permeable particles provided sufficiently close thereto to be capable of sensing resulting variations in said externally applied magnetic fields and of which at least one is substantially unaffected by such magnetically permeable particles, and an output circuit electrically connected to said plurality of magnetic field sensors to provide an indication of changes therefrom due to sensings of externally applied magnetic fields thereby, said method comprising:
applying an external magnetic field primarily along a first direction to said plurality of magnetic field sensors of a magnitude exceeding said saturation value; and applying an external magnetic field primarily along said first direction to said plurality of magnetic field sensors of a magnitude less than said saturation value; and measuring changes in said indications provided by said output circuit resulting in said applyings of said external magnetic fields.
- 47. The method of claim 46 wherein said plurality of magnetic field sensors are connected in a bridge circuit.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation-in-part application of Application No. 09/687,791, filed Oct. 13,2000, for “Magnetizable Bead Detector” by Mark C. Tondra and John M. Anderson, which claims priority from Provisional Application No. 60/159,185, filed Oct. 13, 1999 for “Magnetoresistive Bead Assay”.
Provisional Applications (1)
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Number |
Date |
Country |
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60159185 |
Oct 1999 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09687791 |
Oct 2000 |
US |
Child |
09799429 |
Mar 2001 |
US |