IP Library Granted Patent US 11,726,259
Granted Patent B2
US 11,726,259 · App. 17/164,500 · Granted Aug 15, 2023

Optical circuit element, optical communication apparatus, and method for manufacturing optical circuit element

Inventor: Takeshi Baba (Tsukuba, JP)
Assignee: FUJITSU OPTICAL COMPONENTS LIMITED
G02B6/1228G02B6/13H04B10/40G02B2006/12097H04J14/06
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Quick Facts
Patent No.
US 11,726,259
App. No.
17/164,500
Granted
Aug 15, 2023
Kind
B2
Abstract

An optical circuit element formed on a substrate, the optical circuit element includes a first waveguide and a second waveguide, the second waveguide having a shape in a width direction, the shape being asymmetrical to the first waveguide. The first waveguide includes a first segment and a second segment, the first segment having a width that changes along a light propagation direction, the second segment continuous with the first segment. The second waveguide includes a coupled waveguide adjacent to the second segment of the first waveguide. At least one of the second segment and the coupled waveguide has a shape with a width that changes along the light propagation direction.

Claims (54)

1. An optical circuit element formed on a substrate, the optical circuit element comprising:

a first waveguide;

a second waveguide having a shape in a width direction, the shape being asymmetrical to the first waveguide;

a third waveguide continuous with the second waveguide, a width of the third waveguide increasing along a light propagation direction; and

a fourth waveguide continuous with the third waveguide, a width of the fourth waveguide decreasing along the light propagation direction, wherein

the first waveguide includes a first segment and a second segment, the first segment having a width that changes along the light propagation direction, the second segment continuous with the first segment,

the second waveguide includes a coupled waveguide adjacent to the second segment of the first waveguide,

the coupled waveguide has a shape with a width that changes along the light propagation direction,

a distance between the second segment and the coupled waveguide increasing within a range that an effective refractive index of the first waveguide and an effective refractive index of the second waveguide coincide or intersect with each other in the length direction,

a width of an input side of second segment of the first waveguide is a width which there is a TE1 mode refractive, and

a width of an output side of the second segment of the first waveguide is more than the width of the input side of second segment,

a width of an input side of the coupled waveguide is less than a width which a TE0 effective refractive index of the coupled waveguide is less than a TE1 effective refractive index of the second segment of the first waveguide, and

a width of an output side of the coupled waveguide is more than a width which the TE0 effective refractive index of the coupled waveguide is more than the TE1 effective refractive index of the second segment of the first waveguide.

2. The optical circuit element according to claim 1 , wherein the first segment forms a first tapered waveguide, and the second segment changes in the width in an opposite direction to the first tapered waveguide along the light propagation direction to form a second tapered waveguide.

3. The optical circuit element according to claim 1 , wherein the coupled waveguide has a tapered shape with the width that changes in the light propagation direction.

4. The optical circuit element according to claim 1 , wherein the coupled waveguide includes a tapered shape with the width that changes in the light propagation direction, and

a distance between the coupled waveguide and the second segment changes along the light propagation direction.

5. The optical circuit element according to claim 1 , wherein the second waveguide includes a tapered waveguide with a width that changes in the light propagation direction in a subsequent stage of the coupled waveguide.

6. The optical circuit element according to claim 1 , wherein the first waveguide includes a curved waveguide that extends from the second segment in an opposite direction to the second waveguide and is terminated.

7. The optical circuit element according to claim 1 , the first waveguide and a second waveguide are rib-shaped waveguides.

8. An optical communication apparatus comprising:

a first waveguide;

a second waveguide having a shape in a width direction, the shape being asymmetrical to the first waveguide;

a third waveguide continuous with the second waveguide, a width of the third waveguide increasing along a light propagation direction; and

a fourth waveguide continuous with the third waveguide, a width of the fourth waveguide decreasing along the light propagation direction, wherein

the first waveguide includes a first segment and a second segment, the first segment having a width that changes along the light propagation direction, the second segment continuous with the first segment,

the second waveguide includes a coupled waveguide adjacent to the second segment of the first waveguide,

the coupled waveguide has a shape with a width that changes along the light propagation direction,

a distance between the second segment and the coupled waveguide increasing within a range that an effective refractive index of the first waveguide and an effective refractive index of the second waveguide coincide or intersect with each other in the length direction,

a width of an input side of second segment of the first waveguide is a width which there is a TE1 mode refractive, and

a width of an output side of the second segment of the first waveguide is more than the width of the input side of second segment,

a width of an input side of the coupled waveguide is less than a width which a TE0 effective refractive index of the coupled waveguide is less than a TE1 effective refractive index of the second segment of the first waveguide, and

a width of an output side of the coupled waveguide is more than a width which the TE0 effective refractive index of the coupled waveguide is more than the TE1 effective refractive index of the second segment of the first waveguide.

9. The optical communication apparatus according to claim 8 , wherein the first segment forms a first tapered waveguide, and the second segment changes in the width in an opposite direction to the first tapered waveguide along the light propagation direction to form a second tapered waveguide.

10. The optical communication apparatus according to claim 8 , wherein the coupled waveguide has a tapered shape with the width that changes in the light propagation direction.

11. The optical communication apparatus according to claim 8 , wherein the coupled waveguide includes a tapered shape with the width that changes in the light propagation direction, and

a distance between the coupled waveguide and the second segment changes along the light propagation direction.

12. The optical communication apparatus according to claim 8 , wherein the second waveguide includes a tapered waveguide with a width that changes in the light propagation direction in a subsequent stage of the coupled waveguide.

13. The optical communication apparatus according to claim 8 , wherein the first waveguide includes a curved waveguide that extends from the second segment in an opposite direction to the second waveguide and is terminated.

14. The optical communication apparatus according to claim 8 , the first waveguide and a second waveguide are rib-shaped waveguides.

15. A method for manufacturing optical circuit element, the method comprising:

forming a first waveguide on a substrate;

forming a second waveguide having a shape in a width direction, the shape being asymmetrical to the first waveguide;

forming a third waveguide continuous with the second waveguide, a width of the third waveguide increasing along a light propagation direction; and

forming a fourth waveguide continuous with the third waveguide, a width of the fourth waveguide decreasing along the light propagation direction, wherein

the first waveguide includes a first segment and a second segment, the first segment having a width that changes along a light propagation direction, the second segment continuous with the first segment,

the second waveguide includes a coupled waveguide adjacent to the second segment of the first waveguide,

the coupled waveguide has a shape with a width that changes along the light propagation direction,

a distance between the second segment and the coupled waveguide increasing within a range that an effective refractive index of the first waveguide and an effective refractive index of the second waveguide coincide or intersect with each other in the length direction,

a width of an input side of second segment of the first waveguide is a width which there is a TE1 mode refractive, and

a width of an output side of the second segment of the first waveguide is more than the width of the input side of second segment,

a width of an input side of the coupled waveguide is less than a width which a TE0 effective refractive index of the coupled waveguide is less than a TE1 effective refractive index of the second segment of the first waveguide, and

a width of an output side of the coupled waveguide is more than a width which the TE0 effective refractive index of the coupled waveguide is more than the TE1 effective refractive index of the second segment of the first waveguide.

16. The method according to claim 15 , the first waveguide and the second waveguide are rib-shaped waveguides.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 15, 2022
From: FUJITSU LIMITED
To: FUJITSU OPTICAL COMPONENTS LIMITED
Reel/Frame 060804/0905 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 2, 2021
From: BABA, TAKESHI
To: FUJITSU LIMITED
Reel/Frame 055115/0062 →
Priority Claims (1)
JP 2020-017253 · Feb 4, 2020 · national
Continuity (1)
Related Publication 20210239905A1 · Aug 5, 2021