Claims
- 1. A spin valve sensor apparatus, comprising:
a free layer; and a ferromagnetic layer, wherein the ferromagnetic layer induces a magnetic field to the free layer to thereby stabilize the free layer with regard to perturbations in an output signal voltage in response to an applied magnetic field.
- 2. The spin valve sensor apparatus of claim 1, wherein the ferromagnetic layer includes a pair of ferromagnetic layers which together comprise a synthetic antiferromagnetic layer.
- 3. The spin valve sensor apparatus of claim 1, further comprising an antiferromagnetic layer.
- 4. The spin valve sensor apparatus of claim 3, wherein the antiferromagnetic layer pins a second ferromagnetic layer at ninety degrees relative to a surface of the spin valve sensor apparatus.
- 5. The spin valve sensor apparatus of claim 3, wherein the antiferromagnetic layer pins the ferromagnetic layer at zero degrees relative to a surface of the spin valve sensor apparatus.
- 6. The spin valve sensor apparatus of claim 1, further comprising a pair of antiferromagnetic layers wherein the pair of antiferromagnetic layers includes a first antiferromagnetic layer pinned at zero degrees relative to a surface of the spin valve sensor apparatus, and a second antiferromagnetic layer pinned at ninety degrees relative to the surface of the spin valve sensor apparatus.
- 7. The spin valve sensor apparatus of claim 6, wherein the first and second antiferromagnetic layers have different blocking temperatures.
- 8. The spin valve sensor apparatus of claim 1, wherein the ferromagnetic layer is spaced from the free layer by a nonmagnetic layer.
- 9. The spin valve sensor apparatus of claim 8, wherein a thickness of the nonmagnetic layer is used to control an amount of ferromagnetic exchange between the ferromagnetic layer and the free layer.
- 10. The spin valve sensor apparatus of claim 9, wherein the thickness of the nonmagnetic layer is approximately between 10 and 25 Angstroms.
- 11. The spin valve sensor apparatus of claim 1, wherein the spin valve sensor apparatus is part of a magnetic media read head.
- 12. The spin valve sensor apparatus of claim 11, wherein the magnetic media read head is one of a magnetic disk read head and a magnetic tape read head.
- 13. A method of making a spin valve sensor apparatus, comprising:
providing a free layer; and providing a ferromagnetic layer, wherein the ferromagnetic layer induces a magnetic field to the free layer to thereby stabilize the free layer with regard to perturbations in an output signal voltage in response to an applied magnetic field.
- 14. The method of claim 13, wherein the ferromagnetic layer includes a pair of ferromagnetic layers which together comprise a synthetic antiferromagnetic layer.
- 15. The method of claim 13, further comprising providing an antiferromagnetic layer.
- 16. The method of claim 15, wherein the antiferromagnetic layer pins a second ferromagnetic layer at ninety degrees relative to a surface of the spin valve sensor apparatus.
- 17. The method of claim 15, wherein the antiferromagnetic layer pins the ferromagnetic layer at zero degrees relative to a surface of the spin valve sensor apparatus.
- 18. The method of claim 13, further comprising providing a pair of antiferromagnetic layers, wherein the pair of antiferromagnetic layers includes a first antiferromagnetic layer pinned at zero degrees relative to a surface of the spin valve sensor apparatus, and a second antiferromagnetic layer pinned at ninety degrees relative to the surface of the spin valve sensor apparatus.
- 19. The method of claim 18, wherein the first and second antiferromagnetic layers have different blocking temperatures.
- 20. The method of claim 13, wherein the ferromagnetic layer is spaced from the free layer by a nonmagnetic layer.
- 21. The method of claim 20, wherein a thickness of the nonmagnetic layer is used to control an amount of ferromagnetic exchange between the ferromagnetic layer and the free layer.
- 22. The method of claim 21, wherein the thickness of the nonmagnetic layer is approximately between 10 and 25 Angstroms.
- 23. The method of claim 13, wherein the spin valve sensor apparatus is part of a magnetic media read head.
- 24. The method of claim 23, wherein the magnetic media read head is one of a magnetic disk read head and a magnetic tape read head.
- 25. A spin valve sensor apparatus, comprising:
a free layer; and a synthetic antiferromagnetic layer, wherein the synthetic antiferromagnetic layer induces a magnetic field to the free layer to thereby stabilize the free layer with regard to perturbations in an output signal voltage in response to an applied magnetic field.
RELATED APPLICATIONS
[0001] The present application is related to commonly assigned and copending U.S. patent application Ser. No. 09/894,479 filed Jun. 29, 2001 (Attorney Docket No. 00-113-TAP) entitled “REDUCED SENSITIVITY SPIN VALVE HEAD FOR MAGNETIC TAPE APPLICATIONS,” U.S. patent application 09/896,162 filed Jun. 28, 2001 (Attorney Docket No. 2001-020-TAP) entitled “APPARATUS AND METHOD OF MAKING A REDUCED SENSITIVITY SPIN VALVE SENSOR APPARATUS IN WHICH A FLUX CARRYING CAPACITY IS INCREASED,” U.S. patent application Ser. No. 09/894,378 filed Jun. 29, 2001 (Attorney Docket No. 2001-021-TAP) entitled “APPARATUS AND METHOD OF MAKING A REDUCED SENSITIVITY SPIN VALVE SENSOR APPARATUS IN WHICH A FLUX INJECTION EFFICIENCY IS REDUCED,” and U.S. patent application Ser. No. 09/894,379 filed Jun. 29, 2001 (Attorney Docket No. 2001-019-TAP) entitled “APPARATUS AND METHOD OF MAKING A REDUCED SENSITIVITY SPIN VALVE SENSOR APPARATUS IN WHICH A BASIC MAGNETIC SENSITIVITY IS REDUCED”.