Claims
- 1. A diode laser source, comprising
- a plurality of individually addressable laser elements formed in a monolithic laser diode array heterostructure, each laser element being divided into a plurality of spaced apart laser segments addressed in parallel,
- drive means for providing modulated drive current independently to each laser element but concurrently to every segment of the same laser element,
- beam filling optics disposed in front of each laser element, said beam filling optics including a first lens array with each lenslet of said first lens array disposed in front of and aligned with a corresponding one of said laser segments, and
- focusing optics disposed in front of said beam filling optics and condensing laser light received via said beam filling optics from said plurality of laser elements down to a like number of light spots, there being one corresponding light spot with modulated optical power per each independently driven laser element, said focusing optics including a second lens array with each lenslet of said second lens array aligned with a group of lenslets of said first lens array corresponding to one of said laser elements, light contributed by each of the plurality of individual laser segments of a laser element overlapping to form a single light spot for that laser element, whereby failure of any of at least one of the laser segments constituting that laser element will cause only a slight decrease in optical power and brightness and substantially no change in spot size of the corresponding light spot as opposed to a total loss of that entire laser element.
- 2. A laser source as in claim 1 wherein said first lens array is disposed where divergence of light from said segments fills each lenslet of said lens array.
- 3. A laser source as in claim 1 wherein the number of segments in each laser element is in a range from 5 to 20.
- 4. A laser source as in claim 1 wherein a width of each segment is less than 20 .mu.m.
- 5. A laser source as in claim 1 wherein a center-to-center spacing of the segments forming each laser element is in a range from 20 .mu.m to 50 .mu.m.
- 6. A laser source as in claim 1 wherein the number of individually addressable laser elements is in a range from 10 to 20.
- 7. A laser source as in claim 1 wherein said first and second lens arrays comprise opposite surfaces of a single monolithic lens array structure.
- 8. A laser source as in claim 1 wherein said first and second lens arrays comprise a single monolithic binary diffractive optics lens array structure.
- 9. A diode laser source, comprising
- a plurality of individually addressable laser elements formed in a monolithic laser diode array heterostructure, each laser element being divided into a plurality of spaced apart laser segments addressed in parallel,
- drive means for providing modulated drive current independently to each laser element but concurrently to every segment of the same laser element,
- a cylinder lens disposed in front of said laser heterostructure across all segments of all elements of said array so as to receive diverging light beams from all of said segments and substantially reduce the divergence of said light beams in a transverse direction perpendicular to the plane of said array,
- focusing optics disposed in front of said cylinder lens, said focusing optics including a lens array with a plurality of lenslets, each lenslet of said lens array aligned with a corresponding one of said laser elements to receive the light beams from all segments of that corresponding laser element and focus said light beams of said laser element to a single overlapping spot with modulated output power, whereby said lens array forms a plurality of focused light spots corresponding to the plurality of individually addressable laser elements of said laser diode array, and whereby failure of any of at least one of the laser segments constituting a laser element and contributing light to the corresponding single overlapping spot will cause only a slight decrease in optical power and brightness and substantially no change in spot size of the corresponding light spot as opposed to a total loss of that entire laser element, and
- beam filling optics disposed between said cylinder lens and said focusing optics, said beam filling optics including a collimating lens array with each lenslet thereof aligned with a corresponding one of said laser segments, each lenslet of the focusing lens array aligned with a group of lenslets of the collimating lens array corresponding to one of said laser elements.
CROSS-REFERENCE TO RELATED APPLICATION
This is a continuation-in-part of application Ser. No. 07/986,207 filed Dec. 7, 1992.
US Referenced Citations (20)
Foreign Referenced Citations (1)
Number |
Date |
Country |
63-193102 |
Aug 1988 |
JPX |
Continuation in Parts (1)
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Number |
Date |
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Parent |
986207 |
Dec 1992 |
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