Claims
- 1. A single layer film which exhibits giant magnetoresistance comprising:
- a substantially non-magnetic metallic matrix on a substrate; and
- a plurality of magnetic particles suspended within said substantially non-magnetic metallic matrix wherein each magnetic particle comprises a single magnetic domain having a size less than a mean free path within said magnetic particle and such that an amount of spin-dependent interfacial scattering from an outer surface of said magnetic particles is increased relative to an amount of bulk scattering within said magnetic particles to increase giant magnetoresistance in accordance with the relationship, ##EQU7## and r.sub.MR is an average radius of said magnetic particles, P.sub.S is a spin-dependent ratio for scattering at a surface of said magnetic particles, .lambda..sub.MX is a mean free path in said substantially non-magnetic matrix, .lambda..sub.MR is a mean free path in said magnetic particles, .xi. is a scattering strength for said surface of said magnetic particles, and c is a concentration of said magnetic particles.
- 2. A single layer film as in claim 1 wherein each magnetic particle has a plurality of dimensions, the largest of which is less than a mean free path within said magnetic cluster.
- 3. A single layer film as in claim 2 wherein each magnetic particles has a shape which has a first dimension which is much less along one axis than along other axes.
- 4. A single layer film as in claim 3 wherein said magnetic particles are aligned with their largest dimensions parallel to a plane of said single layer film.
- 5. A single layer film as in claim 1 wherein said magnetic particles are cobalt.
- 6. A single layer film as in claim 1 wherein said magnetic particles are a soft ferromagnetic material.
- 7. A single layer film as in claim 1 wherein said substantially non-magnetic matrix is copper.
- 8. A single layer film as in claim 1 wherein said substantially non-magnetic matrix is silver.
- 9. A heterogeneous film having giant magnetoresistive response to an applied magnetic field comprising:
- a plurality of magnetic particles; and
- a matrix comprising a metallic material having a magnetism much less than a magnetism of said magnetic particles, said plurality of magnetic particles being suspended within said matrix, said matrix being insoluble with said magnetic particles;
- wherein each of said plurality of magnetic particles has a size which is less than a mean free path within each said magnetic particle and said size is such that an amount of spin-dependent interfacial scattering from an outer surface of said magnetic particles is increased relative to an amount of bulk scattering within said magnetic particles to increase giant magnetoresistance in accordance with the relationship ##EQU8## and r.sub.MR is an average radius of said magnetic particles, p.sub.s is a spin-dependent ratio for scattering at a surface of said magnetic particles, .lambda..sub.MX is a mean free path in said matrix, .lambda..sub.MR is a mean free path in said magnetic particles, .xi. is a scattering strength for said surface of said magnetic particles, and c is a concentration of said magnetic particles.
- 10. A heterogeneous film as in claim 9 wherein each magnetic particle comprises a single magnetic domain.
- 11. A heterogeneous film as in claim 9 wherein each magnetic particle has a shape which has a first dimension which is much less along one axis than along other axes.
- 12. A heterogeneous film as in claim 11 wherein said magnetic particles are aligned with their largest dimensions parallel to a plane of said heterogeneous film.
Parent Case Info
This is a division of application Ser. No. 07/899,431, filed Jun. 16, 1992, now abandoned.
Government Interests
This invention was made with Government support under Grant No. NSF-90-10908, awarded by the National Institute Science Foundation. The Government has certain rights in this invention.
US Referenced Citations (7)
Divisions (1)
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Number |
Date |
Country |
Parent |
899431 |
Jun 1992 |
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