Claims
- 1. A magnetic data storage and retrieval system including a magnetic reader and a magnetic storage media having a generally planar surface, the magnetic storage media having information stored thereon, the magnetic reader having an air bearing surface generally parallel to the surface of the magnetic media, the magnetic reader further comprising:
a bottom shield with a width generally parallel to the air bearing surface; a nonmagnetic metallic pedestal positioned on a first portion of the bottom shield, the nonmagnetic metallic pedestal having a width generally parallel to the air bearing surface that is less than the width of the bottom shield such that the nonmagnetic metallic pedestal is not on a second portion of the bottom shield; a bottom reader gap layer positioned on the nonmagnetic metallic pedestal and on the bottom shield; a biasing element positioned on the bottom reader gap layer; a magnetoresistive stack positioned on the bottom reader gap layer; current leads positioned adjacent the magnetoresistive stack; a top reader gap layer positioned on the magnetoresistive stack; and a top shield.
- 2. The magnetic data storage and retrieval system of claim 1 wherein the nonmagnetic metallic pedestal defines first and second sloped pedestal sides.
- 3. The magnetic data storage and retrieval system of claim 2 wherein the bottom reader gap defines first and second sloped gap sides.
- 4. The magnetic data storage and retrieval system of claim 3 wherein the first and second sloped gap sides are defined by a transition of the bottom reader gap from the nonmagnetic metallic pedestal to the bottom shield.
- 5. The magnetic data storage and retrieval system of claim 3 wherein the biasing element is positioned on the sloped gap sides of the bottom reader gap.
- 6. The magnetic reader of claim 1 further comprising a top nonmagnetic metallic layer positioned between the top reader gap layer and the top shield.
- 7. The magnetic reader of claim 1 wherein the top and bottom shields are a soft magnetic material.
- 8. A magnetoresistive (MR) sensor comprising:
a bottom shield having a width, a thickness, and a height; a nonmagnetic metallic pedestal positioned on a portion of the bottom shield, the nonmagnetic metallic pedestal having a width less than the width of the bottom shield; a bottom reader gap positioned on the nonmagnetic metallic pedestal and on the bottom shield such that a portion of the bottom reader gap over the nonmagnetic metallic pedestal is raised relative to portions of the bottom reader gap over the bottom shield; a biasing element positioned on the bottom reader gap; a magnetoresistive stack positioned on the bottom reader gap and on the biasing element; current leads positioned adjacent the magnetoresistive stack; a top reader gap positioned on the magnetoresistive stack; and a top shield positioned over the top reader gap.
- 9. The MR sensor of claim 8 wherein the nonmagnetic metallic pedestal defines first and second sloped pedestal sides.
- 10. The MR sensor of claim 8 wherein the bottom reader gap defines first and second sloped gap sides.
- 11. The MR sensor of claim 10 wherein the first and second sloped gap sides are defined by a transition of the bottom reader gap from the nonmagnetic metallic pedestal to the bottom shield.
- 12. The MR sensor of claim 10 wherein the permanent magnet element is positioned on both the sloped gap sides of the bottom reader gap.
- 13. The MR sensor of claim 12 wherein the magnetoresistive stack is positioned between the biasing element on the sloped gap sides of the bottom reader gap.
- 14. The MR sensor of claim 8 wherein the magnetoresistive stack is a giant magnetoresistive sensor.
- 15. The MR sensor of claim 8 further comprising a top nonmagnetic metallic layer positioned between the top reader gap layer and the top shield.
- 16. A process for fabricating a magnetoresistive (MR) sensor comprising:
fabricating a bottom shield; fabricating a nonmagnetic metallic pedestal on a portion of the bottom shield; fabricating a bottom reader gap layer on the nonmagnetic metallic pedestal and on the bottom shield such that a slope is formed in the bottom reader gap layer between the nonmagnetic metallic pedestal and the bottom shield; fabricating a biasing element on the bottom reader gap layer adjacent the slope; fabricating a magnetoresistive stack on the bottom reader gap; fabricating a top reader gap layer on the magnetoresistive stack; and fabricating a top shield over the top reader gap layer.
- 17. The process of claim 16 wherein fabricating the nonmagnetic metallic pedestal on the bottom shield further includes first forming the nonmagnetic metallic pedestal and then ion milling the nonmagnetic metallic pedestal to desired dimensions.
- 18. The process of claim 17 wherein fabricating the nonmagnetic metallic pedestal includes forming sloped pedestal sides.
- 19. The process of claim 16 wherein fabricating the magnetoresistive stack on the bottom reader gap is accomplished without any ion milling of the biasing element or of the bottom reader gap.
- 20. The process of claim 16 further comprising fabricating a top nonmagnetic metallic layer between the top reader gap layer and the top shield.
- 21. An improved magnetoresistive (MR) sensor including a magnetoresistive stack, the improvement comprising:
a nonmagnetic metallic pedestal positioned proximate a bottom reader gap having a width, the nonmagnetic metallic pedestal having a width smaller than the width of the bottom reader gap such that the relative widths of the nonmagnetic metallic pedestal and the bottom reader gap causes a portion of the reader gap to be in a first plane and a second portion of the reader gap to be in a second plane that is different than the first plane.
CROSS-REFERENCE TO RELATED APPLICATION(S)
[0001] This application claims priority from Provisional U.S. Patent Application No. 60/344,826, filed on Dec. 14, 2001 for “SPIN VALVE SENSOR FOR HIGH AREAL DENSITY APPLICATIONS” for Dimitar V. Dimitrov, Insik Jin, Declan Macken, Robert W. Lamberton, Xuefei Tang, Johannes Van Ek, and Thomas R. Boonstra, which is hereby incorporated by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60344826 |
Dec 2001 |
US |