Claims
- 1. A polarizing beam splitter having a substrate provided with a polarizing stack of layers for splitting a non-collimated light beam having a given wavelength and incident thereupon into two sub-beams having mutually different states of polarization, at least one of the sub-beams having two components of mutually orthogonal polarization, each component having a phase, characterized in that said polarizing beam splitter comprises means for compensating a difference between said phases.
- 2. A polarizing beam splitter as claimed in claim 1, characterized in that the compensating means comprise a compensating stack of thin layers adjacent to the polarizing stack.
- 3. A polarizing beam splitter as claimed in claim 2, characterized in that the polarizing beam splitter comprises a further compensating stack of thin layers adjacent to the polarizing stack.
- 4. A polarizing beam splitter as claimed in claim 3, characterized in that the polarizing stack comprises a plurality of successive layers alternately having a first refractive index n.sub.w and a second refractive index n.sub.h, the value of n.sub.w being lower than the value of n.sub.h.
- 5. A polarizing beam splitter as claimed in claim 3, characterized in that each compensating stack comprises a series of three successive layers having refractive indices n.sub.1, n.sub.2 and n.sub.3, respectively, complying with the relation n.sub.3 <n.sub.2 <n.sub.1.
- 6. A polarizing beam splitter as claimed in claim 3, characterized in that in at least one of the compensating stacks comprises at least one layer having an optical thickness equal to a multiple of half wavelengths of the light beam.
- 7. A polarizing beam splitter as claimed in claim 3, characterized in that the beam splitter has a further substrate such that the polarizing stack is arranged between the two substrates.
- 8. A polarizing beam splitter as claimed in claim 2, characterized in that the polarizing stack comprises a plurality of successive layers alternately having a first refractive index n.sub.w and a second refractive index n.sub.h, the value of n.sub.w being lower than the value of n.sub.h.
- 9. A polarizing beam splitter as claimed in claim 8, characterized in that the compensating stack comprises a series of three successive layers having refractive indices n.sub.1, n.sub.2 and n.sub.3, respectively, complying with the relation n.sub.3 <n.sub.2 <n.sub.1.
- 10. A polarizing beam splitter as claimed in claim 9, characterized in that the refractive indices of the layers comply with the relations n.sub.w is equal to n.sub.3, and n.sub.h is equal to one of the two values n.sub.1 and n.sub.2.
- 11. A polarizing beam splitter as claimed in claim 8, characterized in that the compensating stack comprises at least one layer having an optical thickness equal to a multiple of half wavelengths of the light beam.
- 12. A polarizing beam splitter as claimed in claim 11, characterized in that the at least one layer has a refractive index equal to one of the two values n.sub.w and n.sub.h.
- 13. A polarizing beam splitter as claimed in claim 8, characterized in that at least one layer of the compensating stack has a refractive index equal to one of the two values n.sub.w and n.sub.h.
- 14. A polarizing beam splitter as claimed in claim 8, characterized in that the compensating stack comprises at least one layer having an optical thickness equal to a multiple of half wavelengths of the light beam.
- 15. A polarizing beam splitter as claimed in claim 2, characterized in that each layer of the polarizing stack and the compensating stack has an optical thickness equal to a quarter wavelength of the light beam.
- 16. A polarizing beam splitter as claimed in claim 2, characterized in that the polarizing stack comprises a plurality of successive layers alternately having a first refractive index n.sub.w and a second refractive index n.sub.h, the value of n.sub.w being lower than the value of n.sub.h.
- 17. A polarizing beam splitter as claimed in claim 2 wherein the angle of incidence on the polarizing stack of the incident light beam ranges between 20.degree. and 80.degree..
- 18. A polarizing beam splitter as claimed in claim 2, characterized in that the beam splitter has a further substrate such that the polarizing stack is arranged between the two substrates.
- 19. A polarizing beam splitter of claim 1 wherein the angle of incidence on the polarizing stack of the incident light beam ranges between 20.degree. and 80.degree..
- 20. A polarizing beam splitter as claimed in claim 1, characterized in that the beam splitter has a further substrate such that the polarizing stack is arranged between the two substrates.
- 21. A magneto-optic reading device for reading information stored on a magneto-optic record carrier, which device comprises a radiation source supplying a radiation beam, a polarizing beam splitter as claimed in claim 1, which is arranged in the path of the radiation beam between the radiation source and the record carrier and in the path of the radiation beam reflected by the record carrier for separating the reflected radiation beam from the radiation beam supplied by the radiation source, and a detection system arranged in the path of the reflected radiation beam behind the beam splitter for deriving an information signal from this beam.
- 22. A polarizing beam splitter as claimed in claim 1, characterized in that the compensating means comprise a compensating stack of thin layers having a surface opposing and in contact with a surface of the polarizing stack.
- 23. A polarizing beam splitter as claimed in claim 1 characterized in that each layer of the polarizing stack has an optical thickness equal to a quarter wavelength of the light beam.
- 24. A polarizing beam splitter according to claim 1, wherein said phase difference is incurred in the polarizing stack.
- 25. A polarizing beam splitter having a substrate provided with a polarizing stack for splitting a non-collimated light beam having a given wavelength and incident thereupon into two sub-beams having mutually different states of polarization, said polarizing stack comprising a plurality of successive thin layers alternately having a first refractive index n.sub.w and a second refractive index n.sub.h, the value of n.sub.w being lower than the value of n.sub.h, at least one of the sub-beams having two components of mutually orthogonal polarization, each component having a phase, the polarizing beam splitter comprising a compensating stack for compensating a difference between said phases, said compensating stack comprising a series of three successive layers having refractive indices of n.sub.1, n.sub.2, n.sub.3, respectively, wherein n.sub.3 <n.sub.2 <n.sub.1.
- 26. A polarizing beam splitter according to claim 25, wherein said phase difference is incurred in the polarizing stack.
- 27. A polarizing beam splitter as claimed in claim 25, characterized in that the refractive indices of the layers comply with the relations n.sub.w is equal to n.sub.3, and n.sub.h is equal to one of the two values n.sub.1 and n.sub.2.
- 28. A polarizing beam splitter as claimed in claim 25, characterized in that the refractive indices of the layers comply with the relations n.sub.w is equal to n.sub.2, and n.sub.h is equal to n.sub.1.
- 29. A polarizing beam splitter having a substrate provided with a polarizing stack for splitting a non-collimated light beam having a given wavelength and incident thereupon into two sub-beams having mutually different states of polarization, said polarizing stack comprising a plurality of thin layers alternately having a first refractive index n.sub.w and a second refractive index n.sub.h, at least one of the sub-beams having two components of mutually orthogonal polarization, each component having a phase, the polarizing beam splitter comprising a compensating stack for compensating a difference between said phases, said compensating stack comprising a series of three successive layers having refractive indices of n.sub.1, n.sub.2, n.sub.3 respectively, wherein n.sub.3 <n.sub.2 <n.sub.1.
- 30. A polarizing beam splitter according to claim 29, wherein said phase difference is incurred in the polarizing stack.
Priority Claims (2)
Number |
Date |
Country |
Kind |
09300661 |
Jun 1993 |
BEX |
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94201684 |
Jun 1994 |
EPX |
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Parent Case Info
This is a continuation of application Ser. No. 08/387,756, now abandoned, which is a National Stage application of PCT/I894,00170 filed on Jun. 23, 1994.
US Referenced Citations (9)
Foreign Referenced Citations (1)
Number |
Date |
Country |
0336334 |
Oct 1989 |
EPX |
Continuations (1)
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Number |
Date |
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Parent |
387756 |
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