IP Library Granted Patent US 10,313,021
Granted Patent B1
US 10,313,021 · App. 15/867,269 · Granted Jun 4, 2019

High-efficiency self-resetting integrating optical transceiver

Inventors: Michael Y. Frankel (Bethesda, MD); Vladimir Pelekhaty (Baltimore, MD)
Assignee: Ciena Corporation
H04B10/616H02J7/35G02F1/2257G02F2001/212H02J7/345H04B10/613
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Quick Facts
Patent No.
US 10,313,021
App. No.
15/867,269
Granted
Jun 4, 2019
Kind
B1
Abstract

An optical transceiver includes an optical transmitter configured with data pre-coding to support integrating and resetting functions in a corresponding self-resetting integrating optical receiver; and a self-resetting integrating optical receiver comprising dual photodetectors connected to a capacitor, wherein the dual photodetectors and the capacitor are configured to perform the integrating and resetting functions based on a pre-coded optical input from a corresponding optical transmitter. The data pre-coding can include a 0 differential phase indicative of a 1 bit to set a charge on the capacitor for setting function, +/−π/2 differential phase indicative of a hold so that the charge on the capacitor is held at a previous value by delivering equal intensity to the dual photodetectors for a holding function, and a π differential phase indicative of a 0 bit to reset the charge on the capacitor to zero for resetting function.

Claims (35)

1. An optical link, comprising

an optical transmitter configured with data pre-coding to support an integrating and resetting functions in a corresponding self-resetting integrating optical receiver; and

the self-resetting integrating optical receiver comprising dual photodetectors connected to a capacitor, wherein the dual photodetectors and the capacitor are configured to perform the integrating and resetting functions based on a pre-coded optical input from the corresponding optical transmitter,

wherein the data pre-coding includes a 0 differential phase indicative of a 1 bit to set a charge on the capacitor for a setting function, +/−π/2 differential phase indicative of a hold so that the charge on the capacitor is held at a previous value by delivering equal intensity to the dual photodetectors for a holding function, and a π differential phase indicative of a 0 bit to reset the charge on the capacitor to zero for a resetting function.

2. The optical link of claim 1 , wherein the optical transmitter and the self-resetting integrating optical receiver are implemented in a Photonic Integrated Circuit (PIC).

3. The optical link of claim 1 , wherein the data pre-coding utilizes Quaternary Phase Shift Keying (QPSK) and the self-resetting integrating optical receiver utilizes differential phase detection for decoding.

4. The optical link of claim 1 , wherein the optical transmitter utilizes a phase modulator.

5. The optical link of claim 1 , wherein the optical transmitter utilizes a dual nested I/Q Mach Zehnder modulator.

6. The optical link of claim 1 , wherein the self-resetting integrating optical receiver further comprises variable optical attenuators connected to each of the dual photodetectors and a feedback loop connected to the variable optical attenuators for control thereof.

7. The optical link of claim 1 , wherein the self-resetting integrating optical receiver further comprises a delay interferometer connected to the dual photodetectors and configured to receive the pre-coded optical input.

8. The optical link of claim 7 , wherein the dual photodetectors are utilized to charge and discharge the capacitor to perform the integrating and resetting functions, based on outputs of the delay interferometer.

9. The optical link of claim 1 , wherein the dual photodetectors are utilized to charge and discharge the capacitor to perform the integrating and resetting functions.

10. The optical link of claim 1 , further comprising

a clock forwarding and retiming circuit configured to receive a tap of the pre-coded optical input and provide a clock output which is used to retime an output of the capacitor.

11. A self-resetting integrating optical receiver, comprising

a delay interferometer configured to receive a pre-coded optical input;

dual photodetectors configured to receive outputs of the delay interferometer; and

a capacitor configured to receive an output of the dual photodetectors, wherein the dual photodetectors and the capacitor are configured to perform an integrating and resetting functions based on the pre-coded optical input from a corresponding optical transmitter,

wherein the pre-coded optical input has a 0 differential phase indicative of a 1 bit to set a charge on the capacitor for a setting function, +/−π/2 differential phase indicative of a hold so that the charge on the capacitor is held at a previous value by delivering equal intensity to the dual photodetectors for a holding function, and a π differential phase indicative of a 0 bit to reset the charge on the capacitor to zero for a resetting function.

12. The self-resetting integrating optical receiver of claim 11 , wherein the delay interferometer, the dual photodetectors, and the capacitor are implemented in a Photonic Integrated Circuit (PIC).

13. The self-resetting integrating optical receiver of claim 11 , wherein the pre-coded optical input utilizes Quaternary Phase Shift Keying (QPSK) and the dual photodetectors and the capacitor utilize differential phase detection for decoding.

14. The self-resetting integrating optical receiver of claim 11 , further comprising

variable optical attenuators connected to each of the dual photodetectors and a feedback loop connected to the variable optical attenuators for control thereof.

15. The self-resetting integrating optical receiver of claim 11 , further comprising

a clock forwarding and retiming circuit configured to receive a tap of the pre-coded optical input and provide a clock output which is used to retime an output of the capacitor.

16. A self-resetting integrating optical receiver, comprising

a delay interferometer configured to receive a pre-coded optical input;

dual photodetectors configured to receive outputs of the delay interferometer; and

a capacitor configured to receive an output of the dual photodetectors, wherein the dual photodetectors and the capacitor are configured to perform an integrating and resetting functions based on the pre-coded optical input from a corresponding optical transmitter,

wherein the data pre-coding includes an optical pulse transmitted on a first wavelength to set a charge on the capacitor for a setting function, no light indicative of a hold so that the charge on the capacitor is held at a previous value by delivering no light to the dual photodetectors for a holding function, and an optical pulse on a second wavelength indicative of a 0 bit to reset the charge on the capacitor for a resetting function, and

wherein one of i) a wavelength demultiplexer at the self-resetting integrating optical receiver substantially directs the first wavelength to a first photodetector and the second wavelength to a second photodetector and ii) a first waveguide substantially directs the light to a first photodetector and the second waveguide substantially directs the light to a second photodetector.

17. The self-resetting integrating optical receiver of claim 16 , wherein the optical transmitter and the self-resetting integrating optical receiver are implemented in a Photonic Integrated Circuit (PIC).

18. The self-resetting integrating optical receiver of claim 16 , wherein the data pre-coding utilizes Quaternary Phase Shift Keying (QPSK) and the self-resetting integrating optical receiver utilizes differential phase detection for decoding.

19. The self-resetting integrating optical receiver of claim 16 , wherein the optical transmitter utilizes a phase modulator.

20. The self-resetting integrating optical receiver of claim 16 , wherein the optical transmitter utilizes a dual nested I/Q Mach Zehnder modulator.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 10, 2018
From: FRANKEL, MICHAEL Y.; PELEKHATY, VLADIMIR
To: CIENA CORPORATION
Reel/Frame 044587/0941 →
Cited By (7)
US 12,265,252 US 12,273,144 US 12,323,199 US 12,470,293 US 12,647,186 US 12,666,181 US 12,690,156