IP Library › Granted Patent US 9,866,929
Granted Patent B2
US 9,866,929 · App. 14/840,387 · Granted Jan 9, 2018

High capacity fiber-optic integrated transmission systems

Inventors: Michael Y. Frankel (Baltimore, MD); John P. Mateosky (West River, MD); Michael H. Shahine (Ellicott City, MD); Joseph Berthold (Fallston, MD)
Assignee: Ciena Corporation
H04Q11/0005H04B10/40H04B10/506H04J3/1605H04J14/02H04J14/021H04J14/0221H04J14/0279H04J14/06H04L1/0053H04J14/0227H04J14/0273H04L1/0045H04Q2011/0016H04Q2011/0033H04Q2011/0049H04Q2011/0058
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Quick Facts
Patent No.
US 9,866,929
App. No.
14/840,387
Granted
Jan 9, 2018
Kind
B2
Abstract

A high capacity node includes a plurality of transceivers each with a transmitter configured to support a wavelength within a full transparent window of one or more optical fibers; and one or more optical amplifiers covering the full transparent window, wherein the one or more optical amplifiers comprise one of (i) a single ultra-wideband amplifier covering the full transparent window and (ii) a plurality of amplifiers each supporting a different band of the full transparent window.

Claims (30)

1. A high capacity node, comprising:

a plurality of transceivers each with a transmitter configured to support a wavelength within a full transparent window of one or more optical fibers;

an electrical cross-point switch communicatively coupled to the plurality of transceivers, wherein the cross-point switch performs colorless, directionless, contentionless, and waveblockless functions equivalent to a Reconfigurable Optical Add-Drop Multiplexer (ROADM), wherein the cross-point switch is further communicatively coupled to one or more Time Division Multiplexing (TDM) or packet switches which perform sub-wavelength layer traffic grooming and the cross-point switch performs wavelength layer traffic grooming; and

one or more optical amplifiers covering the full transparent window, wherein the one or more optical amplifiers comprise one of (i) a single ultra-wideband amplifier covering the full transparent window and (ii) a plurality of amplifiers each supporting a different band of the full transparent window.

2. The high capacity node of claim 1 , wherein the full transparent window is about 1270 to about 1670 nm.

3. The high capacity node of claim 1 , wherein the plurality of transceivers support at least 128λ over the full transparent window.

4. The high capacity node of claim 1 , wherein the single ultra-wideband amplifier comprises a quantum-dot amplifier.

5. The high capacity node of claim 1 , wherein the plurality of amplifiers each comprise narrow-band optical amplifiers covering a portion of the full transparent window.

6. The high capacity node of claim 1 , wherein the one or more optical fibers comprise a multi-core fiber.

7. The high capacity node of claim 1 , wherein the plurality of transceivers are implemented as an optoelectronic integrated circuit in a Complementary metal-oxide-semiconductor (CMOS) wafer.

8. The high capacity node of claim 1 , wherein the plurality of transceivers are communicatively coupled over the one or more optical fibers to a second set of a plurality of transceivers in a data center.

9. The high capacity node of claim 1 , wherein the one or more fibers comprise a single fiber, and further comprising:

a circulator coupled to the plurality of transceivers, wherein the plurality of transceivers utilize a channel wavelength offset relative to an adjacent node at an opposite end of the single fiber.

10. The high capacity node of claim 1 , wherein the plurality of transceivers are implemented as an optoelectronic integrated circuit in a Complementary metal-oxide-semiconductor (CMOS) wafer, and wherein the plurality of transceivers are partially or fully integrated on the CMOS wafer.

11. The high capacity node of claim 1 , further comprising:

a multiplexer and a demultiplexer communicatively coupled to the plurality of transceivers, wherein the multiplexer and the demultiplexer utilize one of a multiple stage cascaded structure and a flat structure to cover the full transparent window.

12. A high capacity node, comprising:

a plurality of transceivers each with a transmitter configured to support a wavelength within a full transparent window of one or more optical fibers;

a cross-point switch communicatively coupled to the plurality of transceivers, wherein the cross-point switch is communicatively coupled to one or more Time Division Multiplexing (TDM) or packet switches, wherein the cross-point switch is configured to perform wavelength layer traffic grooming and the one or more TDM or packet switches are configured to perform sub-wavelength layer traffic grooming; and

one or more optical amplifiers covering the full transparent window, wherein the one or more optical amplifiers comprise one of (i) a single ultra-wideband amplifier covering the full transparent window and (ii) a plurality of amplifiers each supporting a different band of the full transparent window.

13. The high capacity node of claim 12 , wherein the full transparent window is about 1270 to about 1670 nm.

14. The high capacity node of claim 12 , wherein the plurality of transceivers support at least 128λ over the full transparent window.

15. The high capacity node of claim 12 , wherein the single ultra-wideband amplifier comprises a quantum-dot amplifier.

16. The high capacity node of claim 12 , wherein the plurality of amplifiers each comprise narrow-band optical amplifiers covering a portion of the full transparent window.

17. The high capacity node of claim 12 , wherein the one or more optical fibers comprise a multi-core fiber.

18. A method implemented in a high capacity node, comprising:

operating a plurality of transceivers each with a transmitter configured to support a wavelength within a full transparent window of one or more optical fibers;

providing outputs from the plurality of transceivers to a cross-point switch communicatively coupled to the plurality of transceivers;

utilizing the cross-point switch to perform wavelength layer traffic grooming and one or more TDM or packet switches connected to the cross-point switch to perform sub-wavelength layer traffic grooming; and

operating one or more optical amplifiers covering the full transparent window to amplify optical signals associated with the plurality of transceivers, wherein the one or more optical amplifiers comprise one of (i) a single ultra-wideband amplifier covering the full transparent window and (ii) a plurality of amplifiers each supporting a different band of the full transparent window.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 31, 2015
From: FRANKEL, MICHAEL Y.; MATEOSKY, JOHN P.; SHAHINE, MICHAEL H.; BERTHOLD, JOSEPH
To: CIENA CORPORATION
Reel/Frame 036457/0385 →
Continuity (3)
Continuation 13711155 · Dec 11, 2012
Continuation In Part 12889158 · Sep 23, 2010
Related Publication 20150372781A1 · Dec 24, 2015