Claims
- 1. A diffractive optical element, comprising a cylindrical surface provided with a diffractive grating pattern, said diffractive grating pattern including a plurality of phase gratings arranged in parallel lines extending along a circumference of said cylindrical surface to cause diffraction of an incident beam, wherein a beam incident on said diffractive grating pattern is divided into and emitted as a plurality of diffracted beams; andwherein said plurality of phase gratings are of equal width and each of said plurality of phase gratings has an asymmetrical phase pattern and a continuous, nonlinear surface with a starting point and an ending point, such that a position of an ending point of one phase grating coincides with a position of a starting point of an adjacent phase grating in a direction of arrangement of the gratings, said plurality of phase gratings causing phase differences in a wave front of said incident beam, and wherein, a phase gap ΔP, representing a phase difference between an end point of each of said plurality of phase patterns and a beginning point of each of said plurality of phase patterns, in radians, is substantially equal for each of said plurality of phase gratings and satisfies: 0.7π<|ΔP|<1.2π.
- 2. The diffractive optical element according to claim 1,wherein said plurality of phase grating are adjusted so that each of said divided diffracted beams has substantially the same intensity and no divided beam is emitted other than said diffracted beams having substantially the same intensity.
- 3. A diffractive optical element, comprising a cylindrical surface provided with a diffractive grating pattern, said diffractive grating pattern including a plurality of phase gratings arranged in parallel lines extending along a circumference of said cylindrical surface to cause diffraction of an incident beam, wherein a beam incident on said diffractive grating pattern is divided into and emitted as a plurality of diffracted beams; andwherein said plurality of phase gratings are of equal width and each of said plurality of phase gratings has a continuous nonlinear surface with a starting point and an ending point, such that a position of an ending point of one phase grating coincides with a position of a starting point of an adjacent phase grating, in a direction of arrangement of the gratings, said plurality of phase grating causing phase differences in a wave front of said incident beam, said phase grating being arranged so that a predetermined number of diffracted beams having substantially a same intensity are emitted, and no additional beam having a substantial intensity is emitted.
- 4. The diffractive optical element according to claim 3,wherein each of said plurality of phase gratings has an asymmetrical phase pattern, and wherein, a phase gap ΔP, representing a phase difference between an end point of each of said plurality of phase patterns and a beginning point of each of said plurality of phase patterns, in radians, is substantially equal for each of said plurality of phase gratings and satisfies: 0.7π<|ΔP|<1.2π.
- 5. A diffractive optical element, comprising a cylindrical surface provided with a diffractive grating pattern, said diffractive grating pattern including a plurality of phase gratings arranged in parallel lines extending along a circumference of said cylindrical surface to cause diffraction of an incident beam having a predetermined wavelength, wherein a beam incident on said diffractive grating pattern is divided into and emitted as a plurality of diffracted beams;wherein said plurality of phase gratings are of equal width and each of said plurality of phase gratings has a continuous nonlinear surface with a starting point and an ending point, such that a position of an ending point of one phase grating coincides with a position of a starting point of an adjacent phase grating, in a direction of arrangement of the gratings, said plurality of phase gratings causing phase differences in a wave front of said incident beam; wherein each of said plurality of phase gratings has an asymmetrical phase pattern, and wherein, a phase gap ΔP, representing a phase difference between an end point of each of said plurality of phase patterns and a beginning point of each of said plurality of phase patterns, in radians, is substantially equal for each of said plurality of phase gratings and satisfies: 0.7π<|ΔP|<1.2π.
- 6. The diffractive optical element according to claim 5,wherein said plurality of phase grating are adjusted so that each of said divided diffracted beams have substantially the same intensity and no divided beam is emitted other than said diffracted beams having substantially the same intensity.
Priority Claims (2)
| Number |
Date |
Country |
Kind |
| 8-198271 |
Jul 1996 |
JP |
|
| 8-198272 |
Jul 1996 |
JP |
|
CROSS REFERENCE TO RELATED APPLICATIONS
This application is a division of U.S. patent application Ser. No. 09/400,478, filed Sep. 21, 1999, now. U.S. Pat. No. 6,212,016 issued on Apr. 3, 2001, which is a division of U.S. patent application Ser. No. 08/890,429, filed Jul. 9, 1997, now U.S. Pat. No. 6,021,000, issued on Feb. 1, 2000, the contents of which are incorporated herein in their entireties.
US Referenced Citations (10)
Foreign Referenced Citations (3)
| Number |
Date |
Country |
| 260669 |
Nov 1926 |
GB |
| 57-49824 |
Mar 1982 |
JP |
| 61213802 |
Sep 1986 |
JP |
Non-Patent Literature Citations (1)
| Entry |
| Ehbets et al., Interferometric Fabrication of Modulated Submicrometer Grantings in Photoresist, 34 Applied Optics, No. 14, pp. 2540-2547 (May 10, 1995). |