Claims
- 1. A lens, comprising:
a first surface adapted for refracting emission from a light source oriented at a first angle, at least one second surface adapted to receive said refracting emission from said first surface so that said refracting emission is substantially totally internally reflected; and a third surface adapted to receive and direct said totally internally reflected emission external to said third surface, wherein said directed emission by said third surface further comprise optical rays which are substantially parallel and are deviated at a second angle with respect to an initial propagation direction from said light source.
- 2. The lens of claim 1, wherein said light source comprises a laser diode.
- 3. The lens of claim 2, wherein said first angle is predetermined by said laser diode being fixedly attached to a V-groove <111> plane on a silicon substrate and wherein said second angle is determined by a normal to a silicon <110> substrate surface plane with respect to an initial propagation direction of light from said laser diode.
- 4. The lens of claim 1, wherein said first angle is between about −49.7 and about −59.7 degrees from a normal to a silicon <110> substrate surface plane and wherein said second angle is determined by a normal to said silicon <110> substrate surface plane with respect to an initial propagation direction of light from said light source.
- 5. The lens of claim 1, wherein said first surface is flat and adapted to be at an incident angle in relation to said light source wherein said emission from said light source is substantially refracted.
- 6. The device of claim 1, wherein said first surface is curved and adapted to be at an incident angle in relation to said light source wherein said emission from said light source is substantially refracted.
- 7. The lens of claim 1, wherein said first surface and said third surface further comprise an anti-reflection coating.
- 8. The lens of claim 7, wherein said anti-reflection coating further comprises a broadband anti-reflection coating from about 800 nm to about 2 microns.
- 9. The lens of claim 1, wherein said second surface further comprises an internal surface adapted to substantially internally reflect said refracted emission from said first surface with unity efficiency wherein a designed angle for substantially all of said refracted emission by said second surface is greater than a critical angle necessary for total internal reflection.
- 10. The lens of claim 9, wherein said second surface further comprises an external surface, wherein an optical coating to said external surface of said second surface is adapted to produce total internal reflection from emission received from said first surface.
- 11. The lens of claim 1, wherein said second surface is flat.
- 12. The lens of claim 1, wherein said second surface is curved.
- 13. The lens of claim 1, wherein said third surface is curved.
- 14. The lens of claim 1, wherein said third surface is adapted to optically condition a divergence angle from a fast axis from said light source so that emission from said light source directed by said third surface comprise optical rays which are substantially parallel along said fast axis.
- 15. The lens of claim 1, wherein said third surface is formed to comprise the shape of a convex curvature.
- 16. The lens of claim 1, wherein said light source comprises a laser diode bar having an emission aperture that is about 2 microns in height and about 1 cm in length.
- 17. An apparatus comprising:
a laser diode having an emitting rectangular aperture oriented at a first angle, wherein said rectangular aperture has a fast axis along its width and a slow axis along its length so that a laser diode emission from said fast axis and said slow axis further comprise different divergence angles; and a cylindrical microlens adapted to deviate said laser diode emission by a second angle wherein said laser diode emission is directed along a normal to a silicon <110> substrate surface plane, wherein said divergence angles from said fast axis and said slow axis are matched so that emission of light from said laser diode after said cylindrical lens comprise optical rays which are substantially parallel along said first axis and said second axis.
- 18. The apparatus of claim 17, wherein said first angle is predetermined by said laser diode being fixedly attached to a V-groove silicon <111> plane on a silicon substrate and wherein said second angle is determined by said laser diode emission being directed along a normal to a silicon <110> substrate surface plane with respect to an initial propagation direction of light from said laser diode.
- 19. The apparatus of claim 17, wherein said first angle is between about −49.7 degrees and about −59.7 degrees from a normal to a silicon <110> substrate surface plane.
- 20. The apparatus of claim 17, wherein said laser diode comprises a laser diode bar having an emission aperture that is longer along its second axis than it is wide along its first axis.
- 21. The apparatus of claim 17, wherein said cylindrical microlens further comprises: a) a first surface adapted for refracting said emission from said laser diode into said cylindrical microlens, b) at least one second surface adapted for total internal reflection of said refracted emission from said first surface; and c) a third surface wherein said third surface is curved and adapted to direct said total internal reflection of said refracted emission external to said cylindrical microlens.
- 22. The apparatus of claim 21, wherein said first surface of said cylindrical microlens is flat and adapted to be at an incident angle in relation to said laser diode wherein said emission from said laser diode is substantially refracted.
- 23. The apparatus of claim 21, wherein said first surface of said cylindrical microlens is curved and adapted to be at an incident angle in relation to said laser diode wherein said emission from said laser diode is substantially refracted.
- 24. The apparatus of claim 21, wherein said first surface of said cylindrical microlens and said third surface comprise an anti-reflection coating.
- 25. The apparatus of claim 24, wherein said anti-reflection coating coating of said cylindrical microlens further comprises a broadband anti-reflection from about 800 nm to about 2 microns.
- 26. The apparatus of claim 21, wherein said second surface is adapted to substantially internally reflect said refracted emission from said first surface with unity efficiency wherein a designed angle for substantially all of said refracted emission by said second surface is greater than a critical angle necessary for total internal reflection.
- 27. The apparatus of claim 26, wherein said second surface further comprises an external surface, wherein an optical coating to said external surface of said second surface is adapted to produce total internal reflection from a refracted laser diode emission received from said first surface.
- 28. The apparatus of claim 26, wherein said second surface is flat.
- 29. The apparatus of claim 21, wherein said second surface is curved.
- 30. The apparatus of claim 21, wherein said third surface is formed to comprise the shape of a convex curvature.
- 31. A two-dimensional array, comprising:
a plurality of laser diode bars oriented at a first angle wherein said first angle is determined by said laser diode bars being fixedly attached to one or more V-groove <111> planes on a silicon substrate; and a plurality of cylindrical microlenses adapted to deviate a light emission from said plurality of laser diode bars by a second angle wherein said light emission from said plurality of laser diode bars are directed along a normal to a silicon <110> substrate surface plane, wherein said light emission comprise optical rays which are substantially parallel.
- 32. The apparatus of claim 31, wherein an effective radiance, (W/cm2-steradian), of said two-dimensional array can be increased up to 100 times.
- 33. A method, comprising:
refracting light emission directed at a first angle from a laser diode by a first surface, totally internally reflecting said refracting light emission from said first surface by at least one second surface, receiving said totally internally reflecting light emission from said second surface by a third surface; and directing said light emission from said third surface at a second angle so that said light emission is directed along a normal to a silicon <110> substrate surface plane, wherein said third surface is adapted to match divergence angles from a fast axis and a slow axis by said laser diode so that said light emission directed by said third surface comprise optical rays which are substantially parallel along said fast axis and said slow axis.
- 34. A method of forming a lens, comprising:
forming a preform having the shape of a cylindrical lens wherein said lens further comprises: 1) an input refracting surface, 2) at least one internally reflecting surface, and 3) an output refracting surface; and drawing said preform to form a cylindrical lens having a cross-sectional shape of said preform, wherein said cross-sectional shape dimensions are reduced below the cross-sectional shape dimensions of said preform.
- 35. The method of claim 34, wherein said lens is fabricated using a shaped fiber pulling technology.
- 36. The method of claim 34, wherein said lens is fabricated using conventional optical grinding technology.
- 37. A lens, comprising:
a first surface adapted for refracting emission from a light source oriented at a first angle, at least one second surface adapted to receive said refracting emission from said first surface so that said refracting emission is substantially totally internally reflected; and a third surface adapted to receive and direct said totally internally reflected emission external to said third surface, wherein said directed emission by said third surface further comprise optical rays which converge to a line focus and are deviated at a second angle with respect to an initial propagation direction from said light source.
Government Interests
[0001] The United States Government has rights in this invention pursuant to Contract No. W-7405-ENG-48 between the United States Department of Energy and the University of California for the operation of Lawrence Livermore National Laboratory.