Claims
- 1. A process for surface texturing a magnetic data storage medium, including:
directing a coherent energy beam from a source thereof toward a magnetic data storage medium; locating beam shaping optics between the source and the storage medium, thereby shaping the beam to provide a shaped beam segment along which sections taken through the beam perpendicular to beam propagation have a selected non-circular sectional shape; and causing the coherent energy beam to impinge upon a selected surface of the storage medium at a plurality of locations thereon, altering the topography of the selected surface at each of said locations by forming a non-circular texturing feature, and orienting the alignment features with major axes thereof aligned substantially in a predetermined direction.
- 2. The process of claim 1 wherein:
said locating of the beam shaping optics includes placing first and second wedged prisms along the beam in spaced apart relation to one another, and orienting each of the prisms to expand the beam in a first direction perpendicular to beam propagation, while maintaining the beam substantially unchanged in size in a second direction perpendicular to beam propagation and perpendicular to the first direction.
- 3. The process of claim 2 further including:
orienting the first and second prisms with respect to one another in complementary fashion, so that a first propagation direction of the beam between the source and the wedged prisms, and a second propagation direction of the shaped beam segment, are substantially the same.
- 4. The process of claim 3 wherein:
said locating of the beam shaping optics comprises selecting the first and second wedged prisms of substantially the same size, shape and refractive index.
- 5. The process of claim 2 further including:
rotatably adjusting the wedged prisms to alter the angles of incidence of the coherent energy beam with respect to the first and second prisms, thereby to adjust an aspect ratio of the shaped beam segment.
- 6. The process of claim 1 wherein:
said locating comprises placing first and second cylindrical lenses along the beam in spaced apart relation to one another, with the first lens being nearer to the source, and the second lens being nearer to the storage medium and having a larger radius of curvature.
- 7. The process of claim 1 further including:
generating the coherent energy beam to have a Gaussian intensity profile as it propagates toward the beam shaping optics.
- 8. The process of claim 7 wherein:
said shaping of the beam comprises providing a shaped beam segment having an aspect ratio from about 1.5 to about 10.
- 9. The process of claim 7 wherein:
the beam is shaped to provide in the shaped beam segment an aspect ratio in the range of about 4 to about 6.
- 10. The process of claim 1 wherein:
the storage medium is a rotatable disk, and said predetermined direction is circumferential with respect to the disk.
- 11. The process of claim 1 further including:
before said directing of the coherent energy beam, polishing said selected surface of the storage medium whereby the selected surface is substantially planar and specular.
- 12. The process of claim 11 wherein:
the forming of each non-circular texturing feature comprises forming at least one of: an elongate nodule protruding above a plane of the selected surface, an elliptical rim protruding above the plane, and a pair of opposed crescent-like ridges separated by gaps at their ends.
- 13. The process of claim 1 wherein:
said causing of the coherent energy beam to impinge upon the selected surface further comprises focusing the beam onto the selected surface.
- 14. The process of claim 13 further including:
adjusting the orientation of a lens used for said focusing, with respect to the beam shaping optics, to cause a predetermined asymmetry in each of said features.
- 15. The process of claim 1 wherein:
said shaping of the coherent energy beam includes expanding the beam in a first selected direction perpendicular to beam propagation, while keeping the size of the beam substantially the same in a second direction perpendicular to propagation and to the first direction.
- 16. The process of claim 1 wherein:
said causing of the coherent energy beam to impinge upon the selected surface includes maintaining the shaped beam segment perpendicular to the selected surface to define a non-circular irradiation area of beam impingement onto the selected surface.
- 17. The process of claim 11 further including:
translating the storage medium and the shaped beam segment relative to one another to move the irradiation area along a path on the storage medium, wherein said directing of the coherent energy beam further includes pulsing the coherent energy beam at a selected pulse duration, and selecting a pulse frequency with respect to a speed of irradiation area translation along said path, such that successive pulses correspond to successive texturing features formed along said path.
- 18. The process of claim 1 wherein the magnetic data storage medium comprises a non-magnetizable substrate, and wherein the process further includes:
depositing a magnetizable film over the substrate at a substantially uniform thickness whereby the film tends to replicate the topography of the substrate surface, wherein the selected surface is a surface of the substrate.
- 19. The process of claim 18 further including:
prior to depositing the magnetizable film, depositing a non-magnetizable metallic underlayer on the substrate at a generally uniform thickness, whereby the magnetizable film when deposited over the substrate is deposited directly onto the non-magnetizable underlayer.
- 20. The process of claim 18 further including:
forming a non-magnetizable cover layer over the magnetizable film in a substantially uniform thickness to provide an exposed outer cover surface substantially replicating the topography of the substrate surface.
- 21. A device for storing magnetic data, including:
a magnetic recording medium including a substrate body formed of a non-magnetizable material and magnetizable film deposited over the substrate body and substantially uniform in thickness, said storage medium having a substantially planar surface including a contact region adapted for surface engagement with a magnetic data transducing head during accelerations and decelerations of the transducing head due to movement of the storage medium in a predetermined direction relative to the transducing head; and multiple texturing features formed in the storage medium surface and protruding above a nominal surface plane of the contact region to collectively define a surface roughness of the contact region, each of the topographical features having a length greater than its width and oriented with its length substantially in said predetermined direction.
- 22. The device of claim 21 wherein:
said data storage medium is a rotatable disk and said predetermined direction is circumferential with respect to the disk.
- 23. The device of claim 21 wherein:
said texturing features have heights above the nominal plane in the range of about _-_ nm.
- 24. The device of claim 21 wherein:
each of the texturing features has a length at least 1.5 times its width.
- 25. The device of claim 21 wherein:
said texturing features are rounded and substantially free of sharp edges.
- 26. The device of claim 25 wherein:
the texturing features include substantially elliptical rims.
- 27. The device of claim 26 wherein:
each of the elliptical rims has a major axis in the length direction and a minor axis in the width direction, and has a gradient in its height from a maximum height region intersected by the minor axis to a minimum height region intersected by the major axis.
- 28. The device of claim 25 wherein:
each of the texturing features comprises confronting, curved ridges that cooperate to define an elliptical shape and are spaced apart from one another to define gaps at opposite ends of the elliptical shape.
- 29. The device of claim 25 wherein:
the texturing features comprise elongated nodules.
- 30. The device of claim 21 wherein:
each of the texturing features has an asymmetry in height gradients in said predetermined direction.
- 31. The device of claim 30 wherein:
said asymmetry is characterized by a maximum height region and first and second slopes away from the medial region on opposite sides thereof, said first slope being substantially steeper than the second.
- 32. The device of claim 31 wherein:
the second slope extends in said predetermined direction, thus to encounter the head before the first slope.
- 33. The device of claim 21 further including:
a metallic, non-magnetizable underlayer between the substrate and the magnetizable film, and having a substantially uniform thickness.
- 34. The device of claim 21 further including:
a protective cover layer deposited on the magnetizable film and having a substantially uniform thickness.
- 35. An apparatus for recording and reading magnetic data including the device of claim 21, and further including:
a magnetic data transducing head; means for supporting the transducing head in a selected orientation relative to the recording medium, and for controlled movement relative to the recording medium in a direction substantially perpendicular to the predetermined direction; and means for moving the storage medium in said predetermined direction.
Parent Case Info
[0001] This application claims the benefit of Provisional Application Serial No. 60/017,267 entitled “Laser Texture Patterns Formed by Non-Axisymmetric Bumps for Magnetic Thin Film Disks”, filed May 13, 1996; and Provisional Application Serial No. 60/042,341, entitled “Using Wedged Prism to Control the Laser-Beam Sectional-Shape for Adjustable Elliptical Bump-Shapes in Laser Texturing Process of Magnetic Recording Media”, filed Mar. 17, 1997.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60017267 |
May 1996 |
US |
|
60042341 |
Mar 1997 |
US |
Divisions (1)
|
Number |
Date |
Country |
Parent |
08849001 |
Aug 1999 |
US |
Child |
09799840 |
Mar 2001 |
US |