Claims
- 1. A method for changing a refractive index of a first part of a medium, comprising:
simultaneously illuminating the first part of the medium with at least part of a first beam of electromagnetic radiation and at least part of a second beam of electromagnetic radiation, wherein the first beam has a first polarization state and a first wavevector and the second beam has a second polarization state different from the first polarization state, and a second wavevector different from the first wavevector.
- 2. A method according to claim 1, wherein the first polarization state and the second polarization state are characterized by time dependent polarization vectors ε1(t) and ε2(t) respectively, and wherein the polarization vectors ε1(t) and ε2(t) are substantially mutually orthogonal.
- 3. A method according to claim 1, wherein the first and second polarization states are at least substantially linear polarization states.
- 4. A method according to claim 1, wherein the first and the second beam have substantially the same optical frequencies, and wherein the first wavevector has a direction different from a direction of the second wavevector.
- 5. A method according to claim 1, further comprising changing the refractive index of a second part of the medium by translating the first and second beams in relation to the medium.
- 6. A method according to claim 1, further comprising adjusting relative intensities of the parts of the first and second beams illuminating the medium.
- 7. A method for changing a refractive index of a first part of a medium, comprising:
providing first and second beams of electromagnetic radiation, the first beam having a first polarization state and a first wavevector, the second beam having a second polarization state different from the first polarization state, and a second wavevector different from the first wavevector; illuminating a diffractive optical element by at least a part of the first beam and a part of the second beam so as to diffract parts of the first and second beams; and positioning the medium in relation to the diffractive element so as to illuminate the first part of the medium by the diffracted parts of the first and second beams.
- 8. A method according to claim 7, wherein the first and the second beam have substantially the same frequencies, and wherein the first and second wavevectors are non-parallel.
- 9. A method according to claim 7, wherein the first polarization state and the second polarization state are mutually orthogonal.
- 10. A method according to claim 7, wherein the first polarization state and the second polarization state are at least substantially linear polarization states.
- 11. A method according to claim 7, further comprising adjusting relative intensities of the first and second beams.
- 12. A method according to claim 7, further comprising adjusting a spatial overlap of the diffracted parts of the first and second beams at the position of the first part of the medium by adjusting a distance between the medium and the diffractive optical element.
- 13. A method according to claim 7, further comprising changing the refractive index of the medium in response to the intensity distribution of at least one of a first and a second diffraction pattern formed respectively by the diffracted parts of the first and second beam.
- 14. A method according to claim 13, further comprising adjusting relative intensities of the first and second diffraction patterns by adjusting relative intensities of the first and of the second beams, and inducing a refractive index grating in the medium corresponding to the first diffraction pattern, the first refractive index grating having a first period Λ1 and a first amplitude envelope function genv, 1, wherein the relative intensities of the first and second diffraction patterns are adjusted so that the second diffraction pattern does not induce any substantial change in the refractive index of the medium.
- 15. A method according to claim 7, further comprising inducing first and second refractive index gratings in the medium corresponding respectively to the first and the second diffraction patterns, the first refractive index grating having a first period Λ1 and a first amplitude envelope function genv, 1, the second refractive index grating having a second period Λ2 and a second amplitude envelope function genv, 2.
- 16. A method according to claim 15, further comprising adjusting a phase relation between the first and second refractive index gratings by adjusting a distance between the medium and the diffractive optical element.
- 17. A method according to claim 15, further comprising adjusting a phase relation between the first and second refractive index gratings by adjusting an angle between the first and second beams.
- 18. A method according to claim 15, further comprising adjusting the first amplitude envelope function genv, 1 relative to the second amplitude envelope function genv, 2 so as to obtain a substantially constant mean refractive index in the first part of the medium.
- 19. A method according to any of claims 15 to 18, wherein the amplitude envelope functions are adjusted by adjusting the intensity of the first beam in relation to the intensity of the second beam.
- 20. A method according to claim 15, further comprising inducing a first and a second refractive index grating in the first part of the medium, said first and a second refractive index grating having a first phase relation in a region of the first part lying at a first distance from the diffractive optical element and a second phase relation in a region of the first part lying at a second distance, different form the first distance, from the diffractive optical element.
- 21. A method according to claim 7, wherein the diffractive optical element includes a phase mask.
- 22. A method according to claim 7, further comprising generating the first and second beams of electromagnetic radiation from a third beam of electromagnetic radiation having a third polarization state and a third wavevector.
- 23. A method according to claim 22, wherein generating the first and second beams includes dividing at least part of the third beam into the first and second beams with respective first and second wavevectors.
- 24. A method according to claim 22, wherein generating the first and second beams further comprises dividing the third beam into first and second beams, the first and second beams being polarized substantially mutually orthogonally, using a beamsplitter having a first optical axis.
- 25. A method according to claim 24, wherein the polarization beamsplitter is one of a Wollaston and a Rochon prism.
- 26. A method according to claim 24, further comprising controlling an angle of incidence of the first and second beams onto the diffractive optical element by use of the polarization beamsplitter.
- 27. A method according to claim 24, further comprising adjusting an angle between the third polarization vector of the third beam and a plane containing the optical axis of the polarization beamsplitter and the third wavevector.
- 28. A method according to claim 27, further comprising adjusting first and second amplitude envelope functions of diffraction gratings, formed by the first and second beams respectively, by adjusting the angle between the third polarization vector of the third beam and the plane containing the optical axis of the polarization beamsplitter and the third wavevector.
- 29. A method according to claim 7, further comprising changing the refractive index of a second part of the medium by translating the diffracted parts of the first and second beams relative to the medium.
- 30. A method according to claim 29, wherein translating the diffracted parts includes scanning the diffracted parts of the first and the second beams beam relative to the medium.
- 31. A method according to claim 30, further comprising varying properties of the induced refractive index change while scanning, the properties being varied by varying one or more of the parameters selected from i) a distance between the diffractive element and the part of medium wherein the refractive index is changed, ii) angle of incidence of at least one of first and second beams upon the diffractive element, iii) relative intensity of the first and second beams, and iv) angle between a third polarization vector of a third beam used to generate the first and second beams using a polarization beamsplitter and the plane containing an optical axis of the polarization beamsplitter and the wavevector of the third beam.
- 32. A system for changing a refractive index of at least part of a medium, comprising:
means for generating first and second beams of electromagnetic radiation having first and second wavevectors respectively, the first beam being polarized substantially orthogonally to the second beam; and diffracting means for generating a first set of diffracted beams with a first polarization state when illuminated by the first beam and for generating a second set of diffracted beams with a second polarization state when illuminated by the second beam; wherein at least the part of the medium is positioned so as to be illuminated by at least part of one of the first and second sets of diffracted beams.
- 33. A system for changing refractive index of at least part of a medium, comprising:
a light generating unit producing a first polarized light beam having a first wavevector and a second polarized light beam having a second wavevector different form the first wavevector, the first beam being polarized substantially orthogonally to the second beam; and a diffractive optical element disposed in the first and second beams to generate a first set of diffracted beams from the first beam and a second set of diffracted beams from the second beam, the at least the part of the medium being positioned so as to be illuminated by at least part of one of the first and second sets of diffracted beams.
- 34. A system according to claim 33, wherein the light generating unit includes a light source providing a third light beam and a splitter for splitting the third light beam into the first and second light beams.
- 35. A system according to claim 34, wherein the splitter is a polarizing beam splitter having an optical axis.
- 36. A system according to claim 35, wherein the polarizing beamsplitter is a one of a Wollaston prism and a Rochon prism.
- 37. A system according to claim 35, wherein the optical axis and a polarization vector of the third beam are adjustable relative to one another, so that relative intensities of the first and second beams are adjustable by adjusting at least one of the optical axis of the polarizing beamsplitter and the polarization vector of the third beam.
- 38. A system according to claim 37, wherein the light source provides the third light beam as a polarized light beam and further comprising a polarization rotator disposed in the third beam to adjust the polarization vector of the third beam.
- 39. A system according to claim 37, wherein the light source provides the light source as an unpolarized light beam, and further comprising a polarizer disposed on a path of the third light beam to polarize the third light beam.
- 40. A system according to claim 39, wherein the polarizer is rotatable so as to rotate a polarization vector of the third beam.
- 41. A system according to claim 33, wherein the two sets of diffracted beams overlap at the medium.
- 42. A system according to claim 33, wherein at least one of a) the medium and b) the first and second sets of diffracted beams is translatable so as to illuminate different parts of the medium with at least one of the first and second sets of diffracted beams.
- 43. A system according to claim 33, wherein the diffractive optical element is a phase mask.
- 44. A system according to claim 33, wherein a distance between the diffractive optical element and the part of the medium is adjustable.
- 45. A system according to claim 33, wherein first and second light beams have a wavelength in the range 150 nm to 450 nm.
- 46. A method for inducing a refractive index grating in a media, comprising:
generating a substantially polarized light beam; dividing the first beam into a second beam and a third beam using a polarizing beamsplitter, the second and third beams being mutually orthogonally polarized and having respective second and third wavevectors, the second wavevector being different form the third wavevector; substantially extinguishing the third beam; generating a second diffraction pattern by illuminating a diffractive optical element with the second beam; illuminating a first part of the medium with the first diffraction pattern so as to induce a first refractve index grating in the medium, the first refractive index grating having a first period Λ1; substantially extinguishing the second beam; generating a third diffraction pattern by illuminating a diffractive optical element with the third beam, illuminating a second part of the medium with the third diffraction pattern so as to induce a second refractive index grating in the medium, the second refractive index grating having a second period Λ2; and controlling a phase between the first refractive index grating and the second refractive index grating by controlling a distance between the diffractive optical element and the medium.
- 47. A method of changing the refractive index of a medium, comprising:
illuminating a first part of the medium with a first set of diffracted light beams produced by a diffractive optical element so as to induce a first refractive index grating in the medium; illuminating a second part of the medium with a second set of diffracted light beams produced by the diffractive optical element so as to induce a second refractive index grating in a second part of the medium; and controlling a phase difference between the first and second refractive index gratings by adjusting a working distance between the medium and the diffracting optical element.
- 48. A method according to claim 47, wherein the first set of diffracted beams is produced from a first polarized light beam having a first wavevector and the second set of diffracted light beams is produced from a second polarized light beam having a second wavevector different from the first wavevector, the second light beam being polarized substantially orthogonally to the first light beam.
- 49. A method according to claim 47, further comprising adjusting relative intensities of the first and second sets of diffracted beams.
- 50. A method according to claim 49, further comprising maintaining a substantially constant fluence of light over a treated area of the medium so as to maintain an average refractive index that is substantially flat over the treated area.
- 51. A method according to claim 47, further comprising translating one of a) the medium and b) the first and second sets of diffracted beams and illuminating third and fourth parts of the medium with the first and second sets of diffracted beams respectively.
RELATED APPLICATIONS
[0001] This application claims priority from U.S. provisional patent application 60/205,577, filed May 22, 2000, which is incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60205577 |
May 2000 |
US |