Claims
- 1. An optical scanner for scanning a light beam along a scan line comprising:
- a light source for emitting a coherent light beam,
- means to collimate said coherent light beam,
- a first stationary binary diffractive optical element to condition said collimated light beam,
- a rotating disc with a plurality of second binary diffractive optical elements to diffract said light beam from said first stationary binary diffractive optical element to focus and scan along said scan line, wherein said diffracted beam to scan along said scan line is the first order diffracted beam, and
- means to block light from said plurality of second binary diffractive optical elements which is not diffracted into said first diffraction order to scan along said scan line.
- 2. The optical scanner for scanning a light beam along a scan line of claim 1 wherein plurality of second binary diffractive optical elements separates said first order diffracted beam from a zero order, nondiffracted beam and other diffraction order beams.
- 3. The optical scanner for scanning a light beam along a scan line of claim 1 wherein said plurality of second binary diffractive optical elements are negative elements.
- 4. The optical scanner for scanning a light beam along a scan line of claim 1 wherein said plurality of second binary diffractive optical elements are positive elements.
- 5. The optical scanner for scanning a light beam along a scan line of claim 1 wherein the multilevel phase relief structure of said plurality of second binary diffractive optical elements are along a radius of said rotating disc to diffract said light beam along said scan line.
- 6. An optical scanner for scanning a light beam along a scan line comprising:
- a light source for emitting a coherent light beam,
- means to collimate said coherent light beam,
- a first stationary binary diffractive optical element to condition and focus said collimated light beam along said scan line,
- a rotating disc with a plurality of second binary diffractive optical elements to diffract said light beam from said first stationary binary diffractive optical element to scan along said scan line, wherein said diffracted beam to scan along said scan line is the first order diffracted beam, and
- means to block light from said plurality of second binary diffractive optical elements which is not diffracted into said first diffraction order to scan along said scan line.
- 7. The optical scanner for scanning a light beam along a scan line of claim 6 wherein plurality of second binary diffractive optical elements separates said first order diffracted beam from a zero order, nondiffracted beam and other diffraction order beams.
- 8. The optical scanner for scanning a light beam along a scan line of claim 6 wherein said plurality of second binary diffractive optical elements are negative elements.
- 9. The optical scanner for scanning a light beam along a scan line of claim 6 wherein said plurality of second binary diffractive optical elements are positive elements.
- 10. The optical scanner for scanning a light beam along a scan line of claim 6 wherein the multilevel phase relief structure of said plurality of second binary diffractive optical elements are along a radius of said rotating disc to diffract said light beam along said scan line.
Parent Case Info
This is a continuation of application Ser. No. 07/989,445, filed Dec. 11, 1992 and now abandoned.
US Referenced Citations (10)
Non-Patent Literature Citations (2)
| Entry |
| W. Veldkamp & T. McHugh, "Binary Optics", Scientific American, vol. 266, No. 5, May 1992, pp. 92-97. |
| G. J. Swanson, "Binary Optics Technology: The Theory and Design of Multi-Level Diffractive Optical Elements", Lincoln Laboratory, Massachusetts Institute of Technology, Technical Report 854, 14 Aug. 1989. |
Continuations (1)
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Number |
Date |
Country |
| Parent |
989445 |
Dec 1992 |
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