Claims
- 1. An optical recording medium comprising, on a substrate, at least a reflective layer, a recording layer, and a dielectric layer, wherein:a solid protective layer having a self-lubricating property is formed on the dielectric layer; and evanescent light is allowed to come into a side of the solid protective layer having the self-lubricating property by using an optical head including a solid immersion lens carried thereon so that at least one of recording and reproduction of information is performed; wherein the following expression is satisfied: 1≦n0 sin θ<n provided that n0 represents a refractive index of the solid immersion lens, θ represents an angle of incidence of light with respect to a light-emitting plane of the solid immersion lens, and n represents a refractive index of the solid protective layer having the self-lubricating property.
- 2. The optical recording medium according to claim 1, wherein the solid protective layer having the self-lubricating property is designed such that an absolute value of difference between the refractive index of the solid protective layer and a refractive index of the dielectric layer is within 0.5, and an absolute value of difference between an extinction coefficient of the solid protective layer and an extinction coefficient of the dielectric layer is within 0.2.
- 3. The optical recording medium according to claim 2, wherein the solid protective layer having the self-lubricating property has a film thickness of 5 nm to 50 nm.
- 4. The optical recording medium according to claim 1, wherein the solid protective layer having the self-lubricating property is composed of a material mainly containing carbon.
- 5. The optical recording medium according to claim 4, wherein the solid protective layer having the self-lubricating property, which is composed of the material mainly containing carbon, contains at least one selected from the group consisting of nitrogen, hydrogen, and fluorine.
- 6. The optical recording medium according to claim 5, wherein the solid protective layer having the self-lubricating property is a diamond-like carbon film.
- 7. The optical recording medium according to claim 6, further comprising another lubricant layer formed on the solid protective layer having the self-lubricating property.
- 8. The optical recording medium according to claim 1, which is a magneto-optical recording medium or a phase-change optical recording medium.
- 9. The optical recording medium according to claim 1, wherein the solid protective layer having the self-lubricating property has a film thickness of 5 nm to 30 nm, and the dielectric layer has a film thickness of 80 nm to 120 nm.
- 10. The optical recording medium according to claim 9, wherein the solid protective layer having the self-lubricating property is composed of carbon or diamond-like carbon.
- 11. The optical recording medium according to claim 10, wherein the dielectric layer has a refractive index within a range of 1.9 to 2.2.
- 12. The optical recording medium according to claim 11, wherein a light-transmissive medium exists between the optical recording medium and the optical head, and a wavelength of light, a material and the film thickness of the solid protective layer, and the refractive index and the film thickness of the dielectric layer are selected so that variation in reproduced signal intensity due to interference of light in the light-transmissive medium is suppressed.
- 13. An optical recording medium comprising, on a substrate, at least a reflective layer, a recording layer, and a dielectric layer, wherein:a solid protective layer having a self-lubricating property is formed on the dielectric layer; and evanescent light is allowed to come into a side of the solid protective layer having the self-lubricating property by using an optical head including a solid immersion lens carried thereon so that at least one of recording and reproduction of information is performed; wherein the following expressions are satisfied: n≦n0 sin θ, t≦(λ−4h)/4n provided that n0 represents a refractive index of the solid immersion lens, θ represents an angle of incidence of light with respect to a light-emitting plane of the solid immersion lens, h represents a distance between the light-emitting plane of the solid immersion lens and a light-incoming surface of the solid protective layer having the self-lubricating property, λ represents a wavelength of the light, n represents a refractive index of the solid protective layer having the self-lubricating property, and t represents a film thickness of the solid protective layer having the self-lubricating property.
- 14. The optical recording medium according to claim 13, wherein the solid immersion lens is a super spherical solid immersion lens.
- 15. The optical recording medium according to claim 13, wherein the solid protective layer having the self-lubricating property is designed such that an absolute value of difference between the refractive index of the solid protective layer and a refractive index of the dielectric layer is within 0.5, and an absolute value of difference between an extinction coefficient of the solid protective layer and an extinction coefficient of the dielectric layer is within 0.2.
- 16. The optical recording medium according to claim 15, wherein the solid protective layer having the self-lubricating property has a film thickness of 5 nm to 50 nm.
- 17. The optical recording medium according to claim 13, wherein the solid protective layer having the self-lubricating property is composed of a material mainly containing carbon.
- 18. The optical recording medium according to claim 17, wherein the solid protective layer having the self-lubricating property, which is composed of the material mainly containing carbon, contains at least one selected from the group consisting of nitrogen, hydrogen, and fluorine.
- 19. The optical recording medium according to claim 18, wherein the solid protective layer having the self-lubricating property is a diamond-like carbon film.
- 20. The optical recording medium according to claim 19, further comprising another lubricant layer formed on the solid protective layer having the self-lubricating property.
- 21. The optical recording medium according to claim 13, which is a magneto-optical recording medium or a phase-change optical recording medium.
- 22. The optical recording medium according to claim 13, wherein the solid protective layer having the self-lubricating property has a film thickness of 5 nm to 30 nm, and the dielectric layer has a film thickness of 80 nm to 120 nm.
- 23. The optical recording medium according to claim 22, wherein the solid protective layer having the self-lubricating property is composed of carbon or diamond-like carbon.
- 24. The optical recording medium according to claim 23, wherein the dielectric layer has a refractive index within a range of 1.9 to 2.2.
- 25. The optical recording medium according to claim 24, wherein a light-transmissive medium exists between the optical recording medium and the optical head, and a wavelength of light, a material and the film thickness of the solid protective layer, and the refractive index and the film thickness of the dielectric layer are selected so that variation in reproduced signal intensity due to interference of light in the light-transmissive medium is suppressed.
Priority Claims (2)
Number |
Date |
Country |
Kind |
9-225760 |
Aug 1997 |
JP |
|
9-244844 |
Aug 1997 |
JP |
|
Parent Case Info
This application is a divisional of application Ser. No. 09/131,226, filed on Aug. 7, 1998, now U.S. Pat. No. 6,160,769 the entire contents of which are hereby incorporated by reference.
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