IP Library Granted Patent US 8,837,879
Granted Patent B2
US 8,837,879 · App. 13/354,718 · Granted Sep 16, 2014

Optical waveguide device and optical hybrid circuit

Inventor: Seok-Hwan Jeong (Kawasaki, JP)
Assignee: Fujitsu Limited
G02B6/2813G02B6/2935
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Quick Facts
Patent No.
US 8,837,879
App. No.
13/354,718
Granted
Sep 16, 2014
Kind
B2
Abstract

The optical waveguide device includes a first optical coupler which branches input light and outputs first signal light and second signal light, an optical phase shifter including a first and a second optical waveguides of optical path lengths different from each other and giving a phase difference between the first signal light and the second signal light, and the second optical coupler coupling the first signal light outputted from the first optical waveguide and the second signal light outputted from the second optical waveguide. The first optical waveguide and the second optical waveguide have the same waveguide width and have optical waveguides bent with substantially the same radius of curvature.

Claims (87)

1. An optical waveguide device comprising:

a first optical coupler branching an input light to output a first signal light and a second signal light;

an optical phase shifter for giving a phase difference between the first signal light and the second signal light including:

a first optical waveguide connected to the first optical coupler and propagating the first signal light; and

a second optical waveguide having an optical path length different from that of an optical path length of the first optical waveguide, connected to the first optical coupler and propagating the second signal light; and

a second optical coupler for coupling the first signal light outputted from the first optical waveguide and the second signal light outputted from the second optical waveguide connected to the first optical waveguide and the second optical waveguide of the optical phase shifter, wherein

the first optical waveguide has a first waveguide width and is a bent optical waveguide bent in a first direction at a first radius of curvature,

the second optical waveguide has a second waveguide width and is a bent optical waveguide bent in a second direction at a second radius of curvature,

the first waveguide width and the second waveguide width are equal to each other,

the first direction and the second direction are the same, and

the first radius of curvature and the second radius of curvature are the same, wherein

a bend angle of the first optical waveguide and a bend angle of the second optical waveguide are different from each other.

2. The optical waveguide device according to claim 1 , wherein

the first optical waveguide has a first linear waveguide between the first optical coupler and the bent portion, and a second linear waveguide between the bent portion and the second optical coupler, and

the second optical waveguide has a third linear waveguide between the first optical coupler and the bent portion, and a fourth linear waveguide between the bent portion and the second optical coupler.

3. The optical waveguide device according to claim 2 , wherein

offsets are provided between the bent portion of the first optical waveguide and the first linear waveguide, between the bent portion of the first optical waveguide and the second linear waveguide, between the bent portion of the second optical waveguide and the third linear waveguide, and between the bent portion of the second optical waveguide and the fourth linear waveguide.

4. The optical waveguide device according to claim 1 , wherein

the first optical coupler, the second optical coupler, the first optical waveguide and the second optical waveguide has a high-mesa waveguide structure.

5. The optical waveguide device according to claim 1 , wherein

the first optical coupler has two input ports and four output ports forming two pairs of output channels, and

the first optical waveguide and the second optical waveguide are connected to one of the two pairs of output channels.

6. The optical waveguide device according to claim 5 , wherein

the second optical coupler is an optical coupler having two input ports and two output ports.

7. The optical waveguide device according to claim 5 , wherein

a quadrature phase shift keying signal is inputted into one of the two input ports of the first optical coupler, and

a local oscillator light is inputted to the other of the two input ports of the first optical coupler.

8. The optical waveguide device according to claim 5 , further comprising:

a third optical coupler having one input port and two output ports;

a third waveguide interconnecting one of the two output ports of the third optical coupler and one of the two input ports of the first optical coupler; and

a fourth optical waveguide which is different from the third optical waveguide in an optical path length and interconnecting the other of the two output ports of the third optical coupler and the other of the two input ports of the first optical coupler.

9. The optical waveguide device according to claim 8 , wherein

differential quadrature phase shift keying signal light is inputted into the one input port of the third optical coupler.

10. The optical waveguide device according to claim 1 , wherein

the second optical coupler is an optical coupler having two input ports and two output ports.

11. The optical waveguide device according to claim 10 , wherein

a quadrature phase shift keying signal is inputted into one of the two input ports of the first optical coupler, and

a local oscillator light is inputted to the other of the two input ports of the first optical coupler.

12. The optical waveguide device according to claim 10 , further comprising:

a third optical coupler having one input port and two output ports;

a third waveguide interconnecting one of the two output ports of the third optical coupler and one of the two input ports of the first optical coupler; and

a fourth optical waveguide which is different from the third optical waveguide in an optical path length and interconnecting the other of the two output ports of the third optical coupler and the other of the two input ports of the first optical coupler.

13. The optical waveguide device according to claim 12 , wherein

differential quadrature phase shift keying signal light is inputted into the one input port of the third optical coupler.

14. An optical hybrid circuit comprising:

an optical waveguide device including:

a first optical coupler branching an input light to output a first signal light and a second signal light;

an optical phase shifter for giving a phase difference between the first signal light and the second signal light including:

a first optical waveguide connected to the first optical coupler and propagating the first signal light; and

a second optical waveguide having an optical path length different from that of an optical path length of the first optical waveguide, connected to the first optical coupler and propagating the second signal light; and

a second optical coupler for coupling the first signal light outputted from the first optical waveguide and the second signal light outputted from the second optical waveguide connected to the first optical waveguide and the second optical waveguide of the optical phase shifter, wherein

the first optical waveguide has a first waveguide width and is a bent optical waveguide bent in a first direction at a first radius of curvature,

the second optical waveguide has a second waveguide width and is a bent optical waveguide bent in a second direction at a second radius of curvature,

the first waveguide width and the second waveguide width are equal to each other,

the first direction and the second direction are the same,

the first radius of curvature and the second radius of curvature are the same,

the first optical coupler has two input ports and four output ports forming two pairs of output channels, and

the first optical waveguide and the second optical waveguide are connected to one of the two pairs of output channels;

a photoelectric converting unit converting to electric signals an optical signal outputted from the other pair of output ports of the first optical coupler and an optical signal outputted from the output port of the second optical coupler; and

a computing unit executing a processing of discriminating the input light, based on the electric signals, wherein

a bend angle of the first optical waveguide and a bend angle of the second optical waveguide are different from each other.

15. The optical hybrid circuit according to claim 14 , wherein

the second optical coupler is an optical coupler having two input ports and two output ports.

16. The optical hybrid circuit according to claim 15 , further comprising:

a third optical coupler having one input port and two output ports;

a third waveguide interconnecting one of the two output ports of the third optical coupler and one of the two input ports of the first optical coupler; and

a fourth optical waveguide which is different from the third optical waveguide in an optical path length and interconnecting the other of the two output ports of the third optical coupler and the other of the two input ports of the first optical coupler.

17. An optical hybrid circuit comprising:

an optical waveguide device including:

a first optical coupler branching an input light to output a first signal light and a second signal light;

an optical phase shifter for giving a phase difference between the first signal light and the second signal light including:

a first optical waveguide connected to the first optical coupler and propagating the first signal light; and

a second optical waveguide having an optical path length different from that of an optical path length of the first optical waveguide, connected to the first optical coupler and propagating the second signal light; and

a second optical coupler for coupling the first signal light outputted from the first optical waveguide and the second signal light outputted from the second optical waveguide connected to the first optical waveguide and the second optical waveguide of the optical phase shifter, wherein

the first optical waveguide has a first waveguide width and is a bent optical waveguide bent in a first direction at a first radius of curvature,

the second optical waveguide has a second waveguide width and is a bent optical waveguide bent in a second direction at a second radius of curvature,

the first waveguide width and the second waveguide width are equal to each other,

the first direction and the second direction are the same,

the first radius of curvature and the second radius of curvature are the same, and

the second optical coupler is an optical coupler having two input ports and two output ports;

a photoelectric converting unit converting to electric signals an optical signal outputted from the other pair of output ports of the first optical coupler and an optical signal outputted from the output port of the second optical coupler; and

a computing unit executing a processing of discriminating the input light, based on the electric signals, wherein

a bend angle of the first optical waveguide and a bend angle of the second optical waveguide are different from each other.

18. The optical hybrid circuit according to claim 17 , further comprising:

a third optical coupler having one input port and two output ports;

a third waveguide interconnecting one of the two output ports of the third optical coupler and one of the two input ports of the first optical coupler; and

a fourth optical waveguide which is different from the third optical waveguide in an optical path length and interconnecting the other of the two output ports of the third optical coupler and the other of the two input ports of the first optical coupler.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 23, 2012
From: JEONG, SEOK HWAN
To: FUJITSU LIMITED
Reel/Frame 027576/0700 →
Priority Claims (1)
JP 2011-067280 · Mar 25, 2011 · national
Continuity (1)
Related Publication 20120243827A1 · Sep 27, 2012