Claims
- 1. A method of fabricating a write head for a magnetic transducer on a wafer comprising the steps of:
depositing ferromagnetic material to form a first pole piece on the wafer below a planned write gap; depositing a first layer of polymeric material over the wafer; forming a first layer stack including a first hard mask layer and a first masked photoresist layer with the first masked photoresist layer being above the first hard mask layer with the first masked photoresist layer defining a coil shape behind the first pole piece; etching through the first layer stack and the first layer of polymeric material according to the first masked photoresist layer to form a first set of trenches in a coil shape; depositing a first seed layer over the wafer; depositing conductive material on the wafer over the first seed layer until the first set of trenches has been overfilled; planarizing the wafer to remove material from the wafer until the first set of trenches is exposed and a first coil layer comprising a plurality of turns of conductive material has been formed; forming a gap layer on the wafer; forming a second pole piece of ferromagnetic material at the write gap and above the gap layer; depositing a second layer of polymeric material over the wafer; forming a second layer stack including a second hard mask layer and a second masked photoresist layer with the second masked photoresist layer being above the second hard mask layer with the second masked photoresist layer defining a coil shape behind the second pole piece; etching through the second layer stack and the second layer of polymeric material according to the second masked photoresist layer to form a second set of trenches in a coil shape; depositing a second seed layer over the wafer; depositing conductive material on the wafer until the second set of trenches has been overfilled; planarizing the wafer to remove material from the wafer until the second set of trenches is exposed and a second coil layer comprising a plurality of turns of conductive material has been formed; forming a third coil layer above the second coil layer; encapsulating the third coil layer in insulating material and forming a third pole piece over insulating material for the third coil completing a yoke.
- 2. The method of claim 1, wherein the first hard mask layer is tantalum oxide.
- 3. The method of claim 1, wherein the first hard mask layer is silicon dioxide.
- 4. The method of claim 1 wherein the first layer stack includes an adhesion layer deposited prior to first seed layer.
- 5. The method of claim 4 wherein the adhesion layer is tantalum.
- 6. The method of claim 4 wherein the adhesion layer is tantalum nitride.
- 7. The method of claim 1 wherein an aspect ratio of the first coil layer is greater than three.
- 8. The method of claim 1 wherein an aspect ratio of the first coil layer is approximately eight.
- 9. A magnetic transducer with an inductive write head comprising:
a gap layer extending from a write gap toward a back of a yoke; a pedestal pole piece of ferromagnetic material which is in contact with the gap layer at a write gap, a back surface of the pedestal defining a zero throat height line; a first coil layer including a plurality of turns of electrically conductive material which pass between the pedestal pole piece and the back of the yoke, the turns of electrically conductive material of the first coil layer being separated by insulating material having sidewalls with a first seed layer thereon; a second coil layer including a plurality of turns of electrically conductive material which pass between a P2 pole piece and the back of the yoke, the turns of electrically conductive material of the second coil layer being separated by insulating material having sidewalls with a second seed layer thereon a third coil layer including a plurality of turns of electrically conductive material which pass between a P3 pole piece and the back of the yoke.
- 10. The magnetic transducer of claim 9 further comprising an adhesion layer between the first seed layer and the insulating material.
- 11. The magnetic transducer of claim 10 wherein the adhesion layer is tantalum.
- 12. The magnetic transducer of claim 10 wherein the adhesion layer is tantalum nitride.
- 13. The magnetic transducer of claim 9 wherein the first seed layer is copper.
- 14. The magnetic transducer of claim 9 wherein an aspect ratio of the first coil layer is greater than three.
- 15. The magnetic transducer of claim 9 wherein an aspect ratio of the first coil layer is approximately eight.
- 16. A disk drive comprising:
a disk having a thin film of ferromagnetic material on a planar surface of the disk; a spindle rotatably supporting the disk; an actuator supporting a magnetic transducer having an air bearing surface confronting the planar surface of the disk; and the magnetic transducer including a write head comprising:
a pedestal pole piece of ferromagnetic material which is in contact with a gap layer at a write gap, a back surface of the pedestal defining a zero throat height line; a first coil layer including a plurality of turns of electrically conductive material which pass between the pedestal pole piece and a back of a yoke, the turns of electrically conductive material of the first coil layer being separated by insulating material having sidewalls with a first seed layer thereon; a second coil layer including a plurality of turns of electrically conductive material which pass between a P2 pole piece at the write gap and the back of the yoke, the turns of electrically conductive material of the second coil layer being separated by insulating material having sidewalls with a second seed layer thereon a third coil layer including a plurality of turns of electrically conductive material which pass between a P3 pole piece connected to the P2 pole piece and the back of the yoke.
- 17. The disk drive of claim 16 wherein an aspect ratio of the first coil layer is greater than three.
- 18. The disk drive of claim 16 wherein an adhesion layer is disposed between the first seed layer and the insulating material.
- 19. The disk drive of claim 18 wherein the adhesion layer is tantalum.
- 20. The disk drive of claim 18 wherein the adhesion layer is tantalum.nitride.
- 21. The disk drive of claim 16 wherein the first seed layer is copper.
- 22. The disk drive of claim 16 wherein an aspect ratio of the first coil layer is greater than three.
- 23. The disk drive of claim 16 wherein an aspect ratio of the first coil layer is approximately eight.
RELATED APPLICATIONS
[0001] Pending U.S. patent application published as US20020093762A1: “Method for seed layer removal for magnetic heads,” which is hereby incorporated by reference, presents related concepts of seed and adhesion layer materials and processes.
[0002] The damascene process used herein is described in detail in the commonly assigned U.S. patent application bearing Ser. No. 10/115,414 which is hereby incorporated by reference.
[0003] Commonly assigned U.S. patent application titled “Magnetic Transducer with Pedestal Pole Piece Structure” bearing Ser. No. 09/884607, which is hereby incorporated by reference, describes a tri-layer coil write head embodiment with a pedestal P1 pole piece defining the zero-throat height which is used in the preferred embodiment of the invention described in this application.