Claims
- 1. A gradient index single lens having an index gradient in a direction perpendicular to an optical axis thereof and having a concave surface and a flat surface, said concave surface being adapted to face a light beam incidence side comprising an object side, and said flat surface being adapted to face a light beam emergence side comprising an image side, when said single lens is used at a reduced magnification, and satisfying the following relation:
- -1.0.ltoreq..gamma..sub.1 /f.ltoreq.-0.3
- where .gamma..sub.1 is a radius of curvature of said concave surface and f is a focal length of said single lens.
- 2. A gradient index single lens having an index gradient in a direction perpendicular to an optical axis thereof and having a concave surface and a flat surface, said concave surface being adapted to face a light beam incidence side comprising an object side, and said flat surface being adapted to face a light beam emergence side comprising an image side when said single lens is used at a reduced magnification, and satisfying the following relation:
- 0.8.ltoreq.d/f.ltoreq.5.0
- where d is an on-axis thickness of said single lens and f is a focal length of said single lens.
- 3. A gradient index single lens according to claim 2, further satisfying the following relation:
- -1.0.ltoreq..gamma..sub.1 /f.ltoreq.-0.3
- where .gamma..sub.1 is a radius of curvature of said concave surface.
- 4. A gradient index single lens according to claim 3, further satisfying the following relation:
- 0.15.ltoreq..vertline..gamma..sub.1 /d.vertline..ltoreq.0.40.
- 5. A gradient index single lens according to claim 3, wherein said flat surface is adapted to receive a light beam from a semiconductor laser so as to convert the light beam into a parallel light beam by said single lens.
- 6. A gradient index single lens having an index gradient in a direction perpendicular to an optical axis thereof and having a first concave surface and a second concave surface, said first concave surface being adapted to face a light beam incidence side comprising an object side, and said second concave surface being adapted to face a light beam emergence side comprising an image side when said single lens is used at a reduced magnification, and satisfying the following relation:
- -2.7.ltoreq.f/.gamma..sub.1 .ltoreq.-1.2
- where .gamma..sub.1 is a radius of curvature of said first concave surface on the light incidence side and f is a focal length of said single lens.
- 7. A gradient index single lens according to claim 6, further satisfying the following relation:
- 0.ltoreq.f/.gamma..sub.2 .ltoreq.2.9
- where .gamma..sub.2 is a radius of curvature of said second concave surface on the light emergence side.
- 8. A gradient index single lens according to claim 7, further satisfying the following relation:
- 1.3.ltoreq.d/f.ltoreq.4.5
- where d is an on-axis thickness of said single lens.
- 9. A gradient index single lens according to claim 8, further satisfying the following relation:
- -1.9.ltoreq.f/.gamma..sub.1 +f/.gamma..sub.2 .ltoreq.0.3.
- 10. A gradient index single lens according to claim 9, further satisfying the following relation:
- -8.1.ltoreq.d/.gamma..sub.1 -d/.gamma..sub.2 .ltoreq.-3.4.
- 11. A gradient index single lens according to claim 8, wherein said second concave surface on the light beam emergence side is adapted to receive a light beam from a semiconductor laser so as to convert the light beam into a parallel light beam by said single lens.
- 12. A gradient index single lens having an index gradient in a direction perpendicular to an optical axis thereof and having a concave surface and a convex surface, said concave surface being adapted to face a light beam incidence side comprising an object side, and said convex surface being adapted to face a light beam emergence side comprising an image side when said single lens is used at a reduced magnification, and satisfying the following relation:
- -2.5.ltoreq.f/.gamma..sub.1 .ltoreq.-0.1
- -1.4.ltoreq.f/.gamma..sub.2 <0
- where .gamma..sub.1 and .gamma..sub.2 are radii of curvature of said concave surface and said convex surface, respectively, and f is a focal length of said single lens.
- 13. A gradient index single lens having an index gradient in a direction perpendicular to an optical axis thereof and having a concave surface and a convex surface, said concave surface being adapted to face a light beam incidence side comprising an object side, and said convex surface being adapted to face a light beam emergence side comprising an image side when said single lens is used at a reduced magnification, and satisfying the following relations:
- 1.0.ltoreq.d/f.ltoreq.5.0
- where d is an on-axis thickness of said single lens and f is a focal length of said single lens; and
- -2.5.ltoreq.f/.gamma..sub.1 .ltoreq.-0.1
- -1.4.ltoreq.f/.gamma..sub.2 <0
- where .gamma..sub.1 and .gamma..sub.2 are radii of curvature of said concave surface and said convex surface, respectively.
- 14. A gradient index single lens according to claim 13, further satisfying
- -2.8.ltoreq.f/.gamma..sub.1 +f/.gamma..sub.2 .ltoreq.-1.2.
- 15. A gradient index single lens according to claim 14, further satisfying
- -7.2.ltoreq.d/.gamma..sub.1 +d/.gamma..sub.2 .ltoreq.-2.2.
- 16. A gradient index single lens according to claim 13, wherein said convex surface is adapted to receive a light beam from a semiconductor laser so as to convert the light beam into a parallel light beam by said single lens.
Priority Claims (3)
Number |
Date |
Country |
Kind |
58-245914 |
Dec 1983 |
JPX |
|
59-125749 |
Jun 1984 |
JPX |
|
59-125750 |
Jun 1984 |
JPX |
|
Parent Case Info
This application is a continuation of application Ser. No. 684,793 filed Dec. 21, 1984, now abandoned.
US Referenced Citations (3)
Continuations (1)
|
Number |
Date |
Country |
Parent |
684793 |
Dec 1984 |
|