Claims
- 1. An optical waveguide chip comprising an output waveguide connected to one of an optical fiber, an optical fiber array module, and another optical waveguide chip, wherein the output waveguide has a coupling cross-section wider than one of a core of the optical fiber, a core of an optical fiber of the optical fiber array module, and a cross-section of a waveguide of said another optical waveguide, respectively; andwherein the output waveguide of the optical waveguide chip has a variable cross-sectional width which gradually increases from a first value at a certain point to a second larger value at an end of the output waveguide of the optical waveguide chip, said certain point being displaced from the end of the output waveguide of the optical waveguide chip by a distance substantially equal to 6 to 12 times a width of a corresponding single-mode output waveguide.
- 2. The optical waveguide chip of claim 1, wherein the cross-sectional width of the output waveguide increases with a slant angle of no greater than 10°.
- 3. The optical waveguide chip of claim 1, wherein the optical waveguide chip includes a substrate formed of a material selected from the group consisting of LiNbO3, silicon wafer, Si3N4, inorganic glass, and a semiconductor from Group III-V of the Periodic Table.
- 4. The optical waveguide chip of claim 1, wherein the output waveguide is made by depositing a diffusion material having an increasing index of refraction on a planar substrate having a light transmission in a used optical wavelength, and then diffusing and permeating the diffusion material into the planar substrate by using one of a chemical method and a physical method.
- 5. The optical waveguide chip of claim 1, wherein an end width of the output waveguide of the optical waveguide chip is up to 4 times a width of a corresponding signal-mode output waveguide.
- 6. An optical waveguide chip comprising an output waveguide connected to an optical device having an input portion, wherein the output waveguide has a coupling cross-section wider than a coupling cross-section of the input portion of the optical device; andwherein the output waveguide of the optical waveguide chip has a variable cross-sectional width which gradually increases from a first value at a certain point to a second larger value at an end of the output waveguide of the optical waveguide chip, said certain point being displaced from the end of the output waveguide of the optical waveguide chip by a distantially equal to 6 to 12 times a width of a corresponding single-mode output waveguide.
- 7. The optical waveguide chip of claim 6, wherein the optical device comprises another optical waveguide chip and the input portion comprises an input waveguide having a cross-section narrower than the coupling cross-section of the output waveguide.
- 8. The optical waveguide chip of claim 6, wherein the optical device comprises an optical fiber and the input portion comprises a core of the optical fiber.
- 9. The optical waveguide chip of claim 6, wherein the optical device comprises an optical fiber array module and the input portion comprises at least one optical fiber of the optical fiber array module.
- 10. The optical waveguide chip of claim 6, wherein the cross-sectional width of the output waveguide increases with a slant angle of no greater than 10°.
- 11. The optical waveguide chip of claim 6, wherein an end width of the output waveguide of the optical waveguide chip is up to 4 times a width of a corresponding single-mode output waveguide.
- 12. The optical waveguide chip of claim 6, wherein the optical waveguide chip includes a substrate formed of a material selected from the group consisting of LiNbO3, silicon wafer, Si3N4, inorganic glass, and a semiconductor from Group III-V of the Periodic Table.
- 13. The optical waveguide chip of claim 6, wherein the output waveguide is made by depositing a diffusion material having an increasing index of refraction on a planar substrate having a light transmission in a used optical wavelength, and then diffusing and permeating the diffusion material into the planar substrate by using one of a chemical method and a physical method.
- 14. An optical waveguide chip comprising an output waveguide connected to one of an optical fiber, an optical fiber array module, and another optical waveguide chip, wherein the output waveguide has a coupling cross-section wider than one of a core of the optical fiber, a core of an optical fiber of the optical fiber array module, and a cross-section of a waveguide of said another optical waveguide, respectively;wherein the optical waveguide chip includes a substrate formed of a material selected from the group consisting of LiNbO3, inorganic glass, and a semiconductor from Group III-V of the Periodic Table.
Priority Claims (1)
Number |
Date |
Country |
Kind |
97-60813 |
Nov 1997 |
KR |
|
CLAIM OF PRIORITY
This application makes reference to, incorporates the same herein, and claims all benefits accruing under 35 U.S.C. §119 from an application for OPTICAL WAVEGUIDE CHIP earlier filed in the Korean Industrial Property Office on the Nov. 18, 1997 and there duly assigned Serial No. 60813/1997.
US Referenced Citations (6)
Number |
Name |
Date |
Kind |
4666236 |
Mikami et al. |
May 1987 |
A |
4776661 |
Handa |
Oct 1988 |
A |
5687272 |
Vinchant et al. |
Nov 1997 |
A |
5854868 |
Yoshimura et al. |
Dec 1998 |
A |
6028973 |
Schienle et al. |
Feb 2000 |
A |
6160927 |
Leclerc et al. |
Dec 2000 |
A |
Foreign Referenced Citations (15)
Number |
Date |
Country |
0 302 043 |
Feb 1989 |
EP |
0 569 181 |
Nov 1993 |
EP |
0 651268 |
May 1995 |
EP |
0 811 860 |
Dec 1997 |
EP |
57-135906 |
Aug 1982 |
JP |
63-163407 |
Jul 1988 |
JP |
64-49004 |
Feb 1989 |
JP |
2-93605 |
Apr 1990 |
JP |
4-34505 |
Feb 1992 |
JP |
4-220609 |
Aug 1992 |
JP |
7-84146 |
Mar 1995 |
JP |
7-128544 |
May 1995 |
JP |
7-191226 |
Jul 1995 |
JP |
9-297235 |
Nov 1997 |
JP |
WO 9514947 |
Jun 1995 |
WO |
Non-Patent Literature Citations (3)
Entry |
“Single-mode optical fiber” obtained from the Web site http://www.its.dldrdoc.gov/fs-1037/dir-033/_4910.htm. |
Mitomi et al., “Design of a Single-Mode Tapered Waveguide for Low-Loss Chip-to-Fiber Coupling”, IEEE Journal of Quantum Electronics, vol. 30 (8), 1994, pp. 1787-1793. |
A.R. Nelson, “Coupling Optical Waveguides by Tapers”, Applied Optics, vol. 14 (12), 1975, pp. 3012-3015. |