Claims
- 1. A multilayer recordable optical medium for writing by writing light and fluorescent reading by reading light, the reading light causing a generation of fluorescent light, the medium comprising a plurality of recordable medium layers layers, each recordable medium layer comprising:
a substrate that is transparent to the writing light, the reading light, and the fluorescent light; and an active layer applied onto the substrate; wherein the active layer comprises:
a fluorescing phase comprising at least one luminophore capable of absorbing the reading light and emitting the fluorescent light; and a quenching phase comprising at least one substance capable of quenching a fluorescence of the at least one luminophore.
- 2. The medium of claim 1, wherein the reading light and the writing light have a common wavelength.
- 3. The medium of claim 1, wherein the reading light and the writing light have different wavelengths.
- 4. The medium of claim 1, wherein the fluorescing and quenching phases constitute polymer thermoplastic layers in immediate contact with each other.
- 5. The medium of claim 1, wherein fluorescing phase comprises two polymer thermoplastic semilayers, between which the quenching phase is provided as a polymer thermoplastic layer.
- 6. The medium of claim 1, wherein the quenching phase comprises two polymer thermoplastic semilayers, between which fluorescing phase is provided as a polymer thermoplastic layer.
- 7. The medium of claim 1, wherein the fluorescing phase comprises a polymer thermoplastic layer, and the quenching phase comprises a binder-free quenching transparent layer.
- 8. The medium of claim 1, wherein the fluorescing phase comprises two polymer thermoplastic semilayers, between which the quenching phase is provided as a binder-free quenching transparent layer.
- 9. The medium of claim 1, wherein the active layer further comprises a spacing layer between the fluorescing and quenching phases.
- 10. The medium of claim 1, wherein the fluorescing phase comprises a polymer thermoplastic layer and a grained sorbent dispersed in the polymer thermoplastic layer with the at least one luminophore adsorbed on a surface of the sorbent.
- 11. The medium of claim 1, wherein the quenching phase comprises a polymer thermoplastic layer and a grained sorbent dispersed in the polymer thermoplastic layer with the at least one quencher adsorbed on a surface of the sorbent.
- 12. The medium of claim 1, wherein the active layer comprises a polymer layer of the fluorescing phase in which the quenching phase is dispersed.
- 13. The medium of claim 12, wherein the quenching phase comprises particles of a solid quencher.
- 14. The medium of claim 13, wherein the particles of the solid quencher are enclosed in a polymer binder.
- 15. The medium of claim 12, wherein the quenching phase comprises a dispersed sorbent with the at least one quencher adsorbed on a surface of the sorbent.
- 16. The medium of claim 1, wherein the active layer comprises a polymer layer of the quencher in which the fluorescing phase is dispersed.
- 17. The medium of claim 16, wherein the fluorescing phase dispersion comprises particles of a solid luminophore.
- 18. The medium of claim 17, wherein the particles of the solid luminophore are enclosed in a polymer binder.
- 19. The medium of claim 16, wherein the fluorescing phase comprises a dispersed sorbent with the at least one luminophore adsorbed on a surface of the sorbent.
- 20. The medium of claim 1, wherein the active layer comprises a polymer thermoplastic layer in which dispersions of the fluorescing and quenching phases are distributed.
- 21. The medium of claim 1, wherein the at least one luminophore does not absorb the writing light.
- 22. The medium of claim 1, wherein the at least one luminophore absorbs the writing light.
- 23. The medium of claim 1, wherein the at least one quencher absorbs the writing light.
- 24. The medium of claim 1, wherein the at least one quencher absorbs the fluorescent light.
- 25. The medium of claim 1, wherein the at least one quencher does not absorb the fluorescent light.
- 26. The medium of claim 1, wherein the fluorescing phase comprises a non-fluorescing dye capable of absorbing the writing light and converting the absorbed writing light to heat.
- 27. The medium of claim 26, wherein the non-fluorescing dye does not absorb the reading light or the fluorescing light.
- 28. The medium of claim 1, wherein the quenching phase comprises a non-fluorescing dye capable of absorbing the writing light and converting the absorbed writing light to heat.
- 29. The medium of claim 28, wherein the non-fluorescing dye does not absorb the reading light or the fluorescing light.
- 30. The medium of claim 1, wherein the fluorescing phase comprises two luminophores with an absorption spectral range of one of the two luminophores overlapping with a fluorescence spectral range of the other of the two luminophores.
- 31. The medium of claim 1, wherein the at least one luminophore is selected from the group consisting of compounds related to polycyclic condensed aromatic hydrocarbons and derivatives thereof, hydrocarbons containing arylethylene and arylacetylene moieties and derivatives thereof, coumarin, xanthene, acridine, oxazine, azine, perylene, terylene, violanthrone, cyanine, phthalocyanine, indigoid, thioindigoid, complex metal dyes and porphyrins.
- 32. The medium of claim 31, wherein the quencher is selected from thr group consisting of compounds based on aromatic hydrocarbons and their derivatives, phthalocyanine, naphthalocyanine, complex metal, radical, coumarin, xanthene, quinone, azo, polymethyne, acridine, quinoneimide, azine, diphenylmethane, indigoid, thioindigoid, and triphenylmethane.
- 33. The medium of claim 1, wherein the substrate is formed from a material selected from the group consisting of polycarbonate, polycycloolefin, polymethylacrylate, polymethylmetacrylate and polystyrene films.
- 34. The medium of claim 1, wherein the substrate comprises a polymer selected from the group consisting of polymethylacrylate, polyvinyl chloride, chlorinated polyvinyl chloride, acrylate and epoxy photopolymerized plastics.
- 35. The medium of claim 1, wherein each of the fluorescing and quenching phases comprises a resin selected from the group consisting of acrylic and vinyl polymers, alkyd, coumarone-indene, epoxy and phenolic resins, fluoropolymers, aminoplasts, polyacetals, polyacrylics, polyalkylenes, polyalkenylenes, polyalkynylenes, polyamic acids, polyamides, polyanhydrides, polyarylenealkenylenes, polyarylenealkylenes, polyarylenes, polyazomethynes, polybenzimidazoles, polybenzothiazoles, polybenzoxazinones, polybenzoxazoles, polybenzyls, polycarbodiimides, polycarbonates, polycarboranes, polycarbosilanes, polycyaurates, polydienes, polyester-polyuretanes, polyesters, polyetheretherketones, polyether-polyuretanes, polyethers, polyhydrazides, polyimidazoles, polyimides, polyimines, polyisocyanurates, polyketones, polyolefins, polyoxadiazoles, polyoxides, polyoxyalkylenes, polyoxyarylenes, polyoxymethylenes, polyoxyphenylenes, polyoxyphenyls, polyphosphazenes, polyquinolines, polyquinoxalines, polysilanes, polysilazanes, polysiloxazanes, polysilsesquioxanes, polysulfonamides, polysulfones, polythiazoles, polythioalkylenes, polythioarylenes, polythioethers, polythiomethylenes, polyureas, polyurethanes, polyvinyl acetals, polyvinyl butyrals and polyvinyl formals.
- 36. The medium of claim 1, wherein each of the fluorescing and quenching phases comprises a plasticizer.
- 37. The medium of claim 1, wherein, in each of the fluorescing and quenching phases, the plasticizer is selected from the group consisting of alkyl phthalates, phosphates, adipates and sebacates, polyethers, and epoxides.
- 38. The medium of claim 1, comprising from two to twenty of the recordable medium layers.
- 39. The medium of claim 38, wherein the recordable medium layers alternate with spacing layers.
- 40. The medium of claim 29, wherein the spacing layers comprise a material selected from the group consisting of UV-solidified lens cements and thermoplastic materials gluing when heated under pressure.
- 41. The medium of claim 1, wherein the medium is formed as a disc.
- 42. The medium of claim 1, wherein the medium is formed as a card.
- 43. The medium of claim 10, wherein the sorbent is selected from the group consisting of Areosil, titanium dioxide, aluminosilicates, and titanosilicates.
- 44. The medium of claim 11, wherein the sorbent is selected from the group consisting of Areosil, titanium dioxide, aluminosilicates, and titanosilicates.
- 45. The medium of claim 15, wherein the sorbent is selected from the group consisting of Areosil, titanium dioxide, aluminosilicates, and titanosilicates.
- 46. The medium of claim 19, wherein the sorbent is selected from the group consisting of Areosil, titanium dioxide, aluminosilicates, and titanosilicates.
- 47. The medium of claim 26, wherein the non-fluorescing dye is selected from the group consisting of phthalocyanine, naphthalocyanine, complex metal, radical, coumarin, xanthene, quinone, azo, polymethyne, acrydine, quinoneimide, azine, diphenylmethane, indigoid, thioindigoid, and triphenylmethane.
- 48. The medium of claim 27, wherein the non-fluorescing dye is selected from the group consisting of phthalocyanine, naphthalocyanine, complex metal, radical, coumarin, xanthene, quinone, azo, polymethyne, acrydine, quinoneimide, azine, diphenylmethane, indigoid, thioindigoid, and triphenylmethane.
- 49. The medium of claim 28, wherein the non-fluorescing dye is selected from the group consisting of phthalocyanine, naphthalocyanine, complex metal, radical, coumarin, xanthene, quinone, azo, polymethyne, acrydine, quinoneimide, azine, diphenylmethane, indigoid, thioindigoid, and triphenylmethane.
- 50. The medium of claim 29, wherein the non-fluorescing dye is selected from the group consisting of phthalocyanine, naphthalocyanine, complex metal, radical, coumarin, xanthene, quinone, azo, polymethyne, acrydine, quinoneimide, azine, diphenylmethane, indigoid, thioindigoid, and triphenylmethane.
- 51. A method of recording information, the method comprising:
(a) providing a multilayer recordable optical medium for writing by writing light and fluorescent reading by reading light, the reading light causing a generation of fluorescent light, the medium comprising a plurality of recordable medium layers layers, each recordable medium layer comprising:
a substrate that is transparent to the writing light, the reading light, and the fluorescent light; and an active layer applied onto the substrate; wherein the active layer comprises:
a fluorescing phase comprising at least one luminophore capable of absorbing the reading light and emitting the fluorescent light; and a quenching phase comprising at least one substance capable of quenching a fluorescence of the at least one luminophore; and (b) focusing the writing light on a point on one of the active layers on which the information is to be written so as to heat the medium at the point to such a temperature that the fluorescing and quenching phases are irreversibly intermixed.
- 52. The method of claim 51, wherein the writing light is ultraviolet light.
- 53. The method of claim 51, wherein the writing light is visible light.
- 54. The method of claim 51, wherein the writing light is near infrared light.
- 55. A method of recording and reproducing information, the method comprising:
(a) providing a multilayer recordable optical medium for writing by writing light and fluorescent reading by reading light, the reading light causing a generation of fluorescent light, the medium comprising a plurality of recordable medium layers layers, each recordable medium layer comprising:
a substrate that is transparent to the writing light, the reading light, and the fluorescent light; and an active layer applied onto the substrate; wherein the active layer comprises:
a fluorescing phase comprising at least one luminophore capable of absorbing the reading light and emitting the fluorescent light; and a quenching phase comprising at least one substance capable of quenching a fluorescence of the at least one luminophore; (b) focusing the writing light on a point on one of the active layers on which the information is to be written so as to heat the medium at the point to such a temperature that the fluorescing and quenching phases are irreversibly intermixed; and (c) irradiating the reading light on at least a portion of the medium to cause the fluorescing phase to emit the fluorescent light where the fluoresing phase has not been intermixed with the quenching phase.
- 56. The method of claim 55, wherein the reading light and the writing light are of different wavelengths.
- 57. The method of claim 55, wherein the reading light and the writing light are of a same wavelength but different intensities.
REFERENCE TO RELATED APPLICATION
[0001] This application claims the benefit of U.S. Provisional Application No. 60/208,505, filed Jun. 2, 2000, and of U.S. Provisional Application No. 60/264,024, filed Jan. 26, 2001, whose disclosures are hereby incorporated by reference in their entireties into the present disclosure.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60208505 |
Jun 2000 |
US |
|
60264024 |
Jan 2001 |
US |