Claims
- 1. A method for producing a structure for storing selectively retrievable data, said method comprising the steps of:
a. providing a data layer of said structure having substantially uniform composition for containing said data; b. defining a primary level of said data layer; c. identifying an index level upon said structure; and d. creating, in said data layer, a first three-dimensional feature, at least a portion of said first feature vertically extending from said primary level in a first direction, said first feature having a principal axis substantially parallel to said primary level, a transverse axis substantially normal to said principal axis and parallel to said primary level, and a vertical axis substantially normal both to said principal axis and to said primary level, said first feature characterized in that:
(1) the transverse extent of said first feature decreases in said first direction; (2) the outer shape of the transverse extent of said first feature, measured from the point at which said first feature begins its displacement from said primary level, at one side of said first feature, until the point at which said displacement from said primary level ends at the opposite side of said first feature, including any portion thereof extending in a vertical direction opposite said first direction, displays no substantial slope discontinuity; (3) the extent of said first feature:
(a) along said vertical axis, in respect to said primary level, is not more than approximately 0.25 micron; (b) along said transverse axis, measured at one-half its maximum vertical displacement from said primary level in said first direction, is not more than approximately one micron; and (c) along said principal axis is at least twice as great as the extent of said first feature along said transverse axis; and (4) the ratio of the maximum displacement of said first feature from said primary level in said first vertical direction to said displacement in said opposite vertical direction excludes a substantially zero value, a substantially infinite value, and values within the range extending from approximately 0.2 to approximately 5.0.
- 2. The method as recited in claim 1, wherein said transverse extent of said first feature is not more than approximately one micron.
- 3. The method as recited in claim 1, wherein said index level coincides with said primary level.
- 4. The method as recited in claim 1, wherein:
a. said structure comprises a disc having a central axis about which said disc may selectively be rotated; and b. said step of creating comprises the step of creating a pit, said pit representing retrievable data.
- 5. The method as recited in claim 4, wherein said step of creating causes the longitudinal extremities of said pit to be mutually geometrically symmetric.
- 6. The method as recited in claim 1, wherein:
a. said structure comprises a disc having a central axis about which said disc may selectively be rotated; and b. said step of creating comprises the step of creating a bump, said bump representing retrievable data.
- 7. The method as recited in claim 6, wherein said step of creating causes the longitudinal extremities of said bump to be mutually geometrically symmetric.
- 8. The method as recited in claim 1, wherein:
a. said structure comprises a disc having a central axis about which said disc may selectively be rotated; and b. said step of creating comprises the step of creating a groove extending along at least an arc in said disc.
- 9. The method as recited in claim 1, wherein:
a. said structure comprises a disc having a central axis about which said disc may selectively be rotated; and b. said step of creating comprises the step of creating a ridge extending along at least an arc in said disc.
- 10. The method as recited in claim 1, wherein said step of creating comprises creating, in said data layer, a second feature, wherein:
a. said second feature comprises an elongated, three-dimensional region extending from said index level to said primary level, a portion of said elongated region having a second principal axis substantially parallel to, and approximately aligned transversely with, said first principal axis; b. the transverse extent of said second feature is less at said primary level than at said index level; and c. the transverse extent of said second feature at said index level, measured from one side of said second feature to the opposite side of said second feature, including any displacement of said second feature in said opposite vertical direction, is not less than said transverse extent of said first feature.
- 11. The method as recited in claim 10, wherein said transverse extent of said first feature is contained within said transverse extent of said second feature.
- 12. The method as recited in claim 10, wherein at least a portion of said first feature is longitudinally displaced from said second feature.
- 13. The method as recited in claim 1, wherein said step of creating comprises creating, in said data layer, a succession of said first features, an initial one of said first features being longitudinally separated from the nearest successive first feature in said succession by a land area of said data layer.
- 14. The method as recited in claim 13, wherein said step of creating comprises creating, in said land area, a second feature, said second feature comprising a three-dimensional region including a second level parallel to said primary level and vertically displaced from said primary level, said region having a principal axis substantially parallel to, and approximately aligned transversely with, said principal axis of said first feature, the transverse extent of said second feature, including any portion of said second feature extending in said opposite vertical direction, being not less than said transverse extent of said initial first feature.
- 15. The method as recited in claim 13, wherein said first features comprise pits.
- 16. The method as recited in claim 13, wherein said first features comprise bumps.
- 17. The method as recited in claim 1, wherein:
a. said step of providing comprises providing a data layer on which microscopic data-representing features may be stored by a thermally-based process; and b. said step of creating comprises creating said first feature by a thermally-based process.
- 18. The method as recited in claim 17, wherein said step of providing comprises the step of providing, as said composition, a material having a first thermal threshold for chemical decomposition and a second thermal threshold for plasticization, said second thermal threshold exceeding said first thermal threshold.
- 19. The method as recited in claim 18, wherein said step of providing comprises providing at least one polymer.
- 20. The method as recited in claim 18, wherein said step of providing comprises providing a resin.
- 21. The method as recited in claim 20, wherein said step of providing comprises providing an ultraviolet-cured resin.
- 22. The method as recited in claim 21, including, prior to said step of creating, the further step of curing said resin by application of ultraviolet light energy.
- 23. The method as recited in claim 20, wherein said step of providing comprises providing a catalytically cured resin.
- 24. The method as recited in claim 23, including, prior to said step of creating, the further step of catalytically curing said resin.
- 25. The method as recited in claim 20, wherein said step of providing comprises providing a thermally cured resin.
- 26. The method as recited in claim 25, including, prior to said step of creating, the further step of thermally curing said resin.
- 27. The method as recited in claim 1, wherein:
a. said step of providing comprises providing a data layer whose character, at a selective region of said data layer, may be altered by selective impingement of an energy-transmitting beam at said region; b. said step of creating comprises creating said first feature by impingement of an energy-transmitting beam at said region; and c. the shape of said first feature is directly derived from the shape of said region.
- 28. The method as recited in claim 27, wherein said step of creating comprises the steps of:
a. directing an energy-transmitting beam toward a first said region of said data layer; b. controlling the intensity of said beam; c. focusing said beam to a beam spot at said first region of said data layer; d. producing relative motion between said first region and said beam spot in a second direction, said second direction being substantially parallel to said data layer; and e. dithering said beam spot in a third direction, said third direction being substantially parallel to said data layer and normal to said second direction.
- 29. The method as recited in claim 27, wherein said step of creating comprises the steps of:
a. directing a first energy-transmitting beam toward a first said region of said data layer; b. also directing a second energy-transmitting beam toward a second said region of said data layer; c. controlling the intensities of said first and second beams; d. focusing said first beam to a first beam spot at said first region; e. also focusing said second beam to a second beam spot at said second region; f. producing relative motion between said data layer and said first and second beam spots in a second direction substantially parallel to said data layer; and g. dithering said second beam spot in respect to said first beam spot, in a third direction, said third direction being substantially parallel to said data layer and normal to said second direction.
- 30. The method as recited in claim 27, wherein said step of creating comprises the steps of:
a. directing a first energy-transmitting beam toward a first said region of said data layer; b. also directing a second energy-transmitting beam toward a second said region of said data layer; c. controlling the intensities of said first and second beams; d. focusing said first beam to a first beam spot at said first region, said first beam spot having a first cross-sectional diameter; e. also focusing said second beam to a second beam spot at said second region, said second beam spot having a second cross-sectional diameter, said second diameter exceeding said first diameter; and f. producing relative motion between said data layer and said first and second beam spots in a direction substantially parallel to said data layer.
- 31. The method as recited in claim 30, wherein said first and second beam spots are substantially concentric.
- 32. The method as recited in claim 27, wherein said step of creating comprises the step of directing a laser beam toward said region of said data layer.
- 33. The method as recited in claim 32, wherein said step of directing comprises:
a. furnishing a laser diode; b. causing said laser diode to generate a laser beam; and c. projecting said laser beam toward said data layer.
- 34. The method as recited in claim 32, wherein said step of directing comprises:
a. furnishing a gas laser; b. causing said gas laser to generate a laser beam; and a. projecting said laser beam toward said data layer.
- 35. The method as recited in claim 29, wherein:
a. said step of directing comprises directing a laser beam; and b. said step of also directing comprises also directing a laser beam.
- 36. The method as recited in claim 35, wherein said steps of directing and also directing comprise directing a laser beam originating from a single laser source.
- 37. The method as recited in claim 30, wherein:
a. said step of directing comprises directing a laser beam; and b. said step of also directing comprises also directing a laser beam.
- 38. The method as recited in claim 37, wherein said steps of directing and also directing comprise directing a laser beam originating from a single laser source.
- 39. The method as recited in claim 17, wherein:
a. said step of providing comprises providing a data layer whose character, at a selective region of said data layer, may be altered through a thermally-based process by selective impingement of an energy-transmitting beam at said region; b. said step of creating comprises creating said first feature by impingement of an energy-transmitting beam at said region; and c. the shape of said first feature is directly derived from the shape of said region.
- 40. The method as recited in claim 39, wherein said step of creating comprises the steps of:
a. directing an energy-transmitting beam toward a first said region of said data layer; b. controlling the intensity of said beam; c. focusing said beam to a beam spot at said first region of said data layer; d. producing relative motion between said first region and said beam spot in a second direction, said second direction being substantially parallel to said data layer; and e. dithering said beam spot in a third direction, said third direction being substantially parallel to said data layer and normal to said second direction.
- 41. The method as recited in claim 39, wherein said step of creating comprises the steps of:
a. directing a first energy-transmitting beam toward a first said region of said data layer; b. also directing a second energy-transmitting beam toward a second said region of said data layer; c. controlling the intensities of said first and second beams; d. focusing said first beam to a first beam spot at said first region; e. also focusing said second beam to a second beam spot at said second region; f. producing relative motion between said data layer and said first and second beam spots in a second direction substantially parallel to said data layer; and g. dithering said second beam spot in respect to said first beam spot, in a third direction, said third direction being substantially parallel to said data layer and normal to said second direction.
- 42. The method as recited in claim 39, wherein said step of creating comprises the steps of:
a. directing a first energy-transmitting beam toward a first said region of said data layer; b. also directing a second energy-transmitting beam toward a second said region of said data layer; c. controlling the intensities of said first and second beams; d. focusing said first beam to a first beam spot at said first region, said first beam spot having a first cross-sectional diameter; e. also focusing said second beam to a second beam spot at said second region, said second beam spot having a second cross-sectional diameter, said second diameter exceeding said first diameter; and f. producing relative motion between said data layer and said first and second beam spots in a direction substantially parallel to said data layer.
- 43. The method as recited in claim 42, wherein said first and second beam spots are substantially concentric.
- 44. The method as recited in claim 39, wherein said step of creating comprises the step of directing a laser beam toward said region of said data layer.
- 45. The method as recited in claim 44, wherein said step of directing comprises:
a. furnishing a laser diode; b. causing said laser diode to generate a laser beam; and c. projecting said laser beam toward said data layer.
- 46. The method as recited in claim 44, wherein said step of directing comprises:
a. furnishing a gas laser; b. causing said gas laser to generate a laser beam; and c. projecting said laser beam toward said data layer.
- 47. The method as recited in claim 41, wherein:
a. said step of directing comprises directing a laser beam; and b. said step of also directing comprises also directing a laser beam.
- 48. The method as recited in claim 47, wherein said steps of directing and also directing comprise directing a laser beam originating from a single laser source.
- 49. The method as recited in claim 42, wherein:
a. said step of directing comprises directing a laser beam; and b said step of also directing comprises also directing a laser beam.
- 50. The method as recited in claim 49, wherein said steps of directing and also directing comprise directing a laser beam originating from a single laser source.
- 51. A method for producing a structure for storing selectively retrievable data, said method comprising the steps of:
a. providing a data layer of said structure for containing said data; b. defining a first level of said data layer; c. identifying a second level of said data layer substantially parallel to said first level and vertically displaced from said first level in a first direction; d. specifying a third level of said data layer substantially parallel to said first and second levels and vertically displaced from said second level in said first direction, and further displaced from said first level in said first direction; e. creating, in said data layer, a first three-dimensional data-representing feature, at least a portion of said first feature vertically extending from said second level to said third level, said first feature having a first principal axis substantially parallel to said second level, a transverse axis substantially normal to said first principal axis and parallel to said second level, and a vertical axis substantially normal both to said first principal axis and to said second level, said first feature characterized in that:
(1) the transverse extent of said first feature is less at said third level than at said second level; (2) the transverse extent of said first feature at said second level, from one side of said first feature to the opposite side of said first feature, including any displacement of said first feature from said second level in a vertical direction opposite said first direction, is microscopic; and (3) the length of said first feature from one end of said first feature to the opposite end of said first feature, along said first principal axis, including any displacement of said first feature in said opposite vertical direction, is not more than approximately 4 microns; and f. also creating, in said data layer, a second feature, wherein:
(1) said second feature comprises an elongated, three-dimensional region extending from said first level to said second level, a portion of said elongated region having a second principal axis substantially parallel to, and approximately aligned transversely with, said first principal axis; (2) the transverse extent of said second feature is less at said second level than at said first level; and (3) the transverse extent of said second feature at said first level, measured from one side of said second feature to the opposite side of said second feature, including any displacement of said second feature in said opposite vertical direction, is not less than said transverse extent of said first feature.
- 52. The method as recited in claim 51, wherein said step of providing comprises the step of providing, as the composition of said data layer, a material having a first thermal threshold for chemical decomposition and a second thermal threshold for plasticization, said second thermal threshold exceeding said first thermal threshold.
- 53. The method as recited in claim 51, wherein said step of creating comprises the steps of:
a. directing an energy-transmitting beam toward said data layer; b. controlling the intensity of said beam; c. focusing said beam to a beam spot in said data layer; d. producing relative motion between said data layer and said beam spot in a second direction, said second direction being substantially parallel to said data layer; and e. dithering said beam spot in a third direction, said third direction being substantially parallel to said data layer and normal to said second direction.
- 54. The method as recited in claim 51, wherein said step of creating comprises the steps of:
a. directing a first energy-transmitting beam toward said data layer; b. also directing a second energy-transmitting beam toward said data layer; c. controlling the intensities of said first and second beams; d. focusing said first beam to a first beam spot in said data layer; e. also focusing said second beam to a second beam spot in said data layer; f. producing relative motion between said data layer and said first and second beam spots in a second direction substantially parallel to said data layer; and g. dithering said second beam spot in respect to said first beam spot, in a third direction, said third direction being substantially parallel to said data layer and normal to said second direction.
- 55. The method as recited in claim 51, wherein said step of creating comprises the steps of:
a. directing a first energy-transmitting beam toward said data layer; b. also directing a second energy-transmitting beam toward said data layer; c. controlling the intensities of said first and second beams; d. focusing said first beam to a first-beam spot in said data layer, said first beam spot having a first cross-sectional diameter; e. also focusing said second beam to a second beam spot in said data layer, said second beam spot having a second cross-sectional diameter, said second diameter exceeding said first diameter; and f. producing relative motion between said data layer and said first and second beam spots in a direction substantially parallel to said data layer.
- 56. The method as recited in claim 55, wherein said first and second beam spots are substantially concentric.
- 57. A method for producing a structure containing selectively retrievable data, said method comprising the steps of:
a. providing a data layer of said structure for containing said data; b. defining a first level of said data layer; c. identifying a second level of said data layer substantially parallel to said first level and vertically displaced from said first level in a first direction; d. specifying a third level of said data layer substantially parallel to said first and second levels and vertically displaced from said second level in said first direction, and further displaced from said first level in said first direction; e. positioning, in said data layer, an elongated data track, at least a portion of said track being substantially:
(1) longitudinal; and (2) normal to said first direction; f. creating, in a segment of said data track, a first microscopic data-representing three-dimensional feature, at least a portion of said first feature having:
(1) a first principal axis substantially parallel to said portion of said data track and approximately aligned transversely therewith; (2) a vertical axis substantially normal to said principal axis, said portion of said first feature extending, in the direction of said vertical axis, from said second level to said third level; (3) a transverse extent that is less at said third level than at said second level; and (4) a transverse extent, at said second level, from one side of said first feature to the opposite side of said first feature, including any displacement of said first feature from said second level in a vertical direction opposite said first direction, having a first microscopic dimensional value; and b. also creating, in a portion of said data track, a second elongated, three-dimensional feature, at least a portion of said second feature having:
(1) a second principal axis substantially parallel to, and approximately aligned transversely with, said portion of said data track and said first principal axis; (2) a vertical axis substantially normal to said second principal axis, said portion of said second feature extending, in the direction of said vertical axis from said first level to said second level; (3) a transverse extent that is less at said second level than at said first level; and (4) a transverse extent, at said first level, from one side of said second feature to the opposite side of said second feature, including any displacement of said second feature from said second level in said opposite vertical direction, having a second microscopic dimensional value, said second dimensional value not less than said first dimensional value.
CROSS REFERENCE TO RELATED APPLICATION
[0001] This is a divisional of U.S. patent application Ser. No. 09/558,071, filed Apr. 26, 2000.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09558071 |
Apr 2000 |
US |
Child |
10384426 |
Mar 2003 |
US |