IP Library › Granted Patent US 12,455,488
Granted Patent B2
US 12,455,488 · App. 18/402,660 · Granted Oct 28, 2025

Optical coupling device with adjustable coupling coefficient

Inventors: Johannes Feldmann (Oxfordshire, GB); Vayshnavee Kewada (Oxfordshire, GB)
Assignee: SALIENCE LABS LTD
G02F1/311G02F1/3132G02F1/3136G02F1/3137
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Quick Facts
Patent No.
US 12,455,488
App. No.
18/402,660
Granted
Oct 28, 2025
Kind
B2
Abstract

An optical coupling device is presented. The optical coupling device comprises a plurality of input channels; a plurality of output channels; and a plurality of input coupling arrangements, or a plurality of output coupling arrangements, or a combination of both. Each input coupling arrangement has a coupling channel, and is configured to couple an optical signal propagating through a corresponding input channel into the coupling channel with an adjustable coupling coefficient. Each output coupling arrangement has a coupling channel and is configured to couple an optical signal propagating through the coupling channel into a corresponding output channel with an adjustable coupling coefficient.

Claims (45)

1. An optical coupling device comprising

a plurality of input channels;

a plurality of output channels;

a plurality of input coupling arrangements and a plurality of output coupling arrangements;

wherein each input coupling arrangement comprises a coupling channel, the input coupling arrangement being configured to couple an optical signal propagating through a corresponding input channel into the coupling channel with an adjustable coupling coefficient;

wherein each output coupling arrangement comprises a coupling channel, the output coupling arrangement being configured to couple an optical signal propagating through the coupling channel into a corresponding output channel with an adjustable coupling coefficient;

wherein each input channel and/or each output channel is provided with an amplitude adjuster comprising an attenuator followed by an optical amplifier; and

wherein the input coupling arrangements and the output coupling arrangements comprise a phase shift element,

wherein the input coupling arrangements and the output coupling arrangements are implemented as interferometers; and

a controller configured to control the operation of the phase shift elements to set the adjustable coupling coefficients, so as to control an amount of optical signal propagating through the input channel, and to control an amount of optical signal propagating through the output channel.

2. The optical coupling device as claimed in claim 1 , wherein the phase shift element comprises an optical modulator.

3. The optical coupling device as claimed in claim 1 , wherein the interferometer has a first arm and a second arm arranged to form an input combiner-splitter and an output combiner-splitter.

4. The optical coupling device as claimed in claim 1 , wherein the coupling channel extends between a first end and a second end.

5. The optical coupling device as claimed in claim 4 , wherein each input channel extends along a corresponding longitudinal axis, and wherein the input channels are arranged substantially parallel to each other; and wherein the coupling channels are substantially perpendicular to the input channels.

6. The optical coupling device as claimed in claim 4 , wherein the coupling channel forms part of an input coupling arrangement at the first end, and wherein the coupling channel forms part of an output coupling arrangement at the second end.

7. The optical coupling device as claimed in claim 1 , wherein each optical amplifier is a semiconductor optical amplifier.

8. The optical coupling device as claimed in claim 1 , wherein each attenuator is one of a Mach Zehnder modulator, an electro-absorption modulator, a micro-ring resonator, and a phase-change material modulator.

9. The optical coupling device as claimed in claim 1 , wherein the plurality of coupling channels forms at least one primary set of coupling channels configured to couple the plurality of input channels to a single output channel; and wherein the plurality of coupling channels forms at least one secondary set of coupling channels configured to couple a single input channel to a plurality of output channels.

10. The optical coupling device as claimed in claim 1 , wherein each input channel is provided with an edge coupler for coupling the input channel to an optical fiber; and wherein each output channel is provided with an edge coupler for coupling the output channel to an optical fiber.

11. The optical coupling device as claimed in claim 1 , wherein the optical coupling device is bi-directional.

12. A system comprising a plurality of optical coupling devices as claimed in claim 1 , wherein each optical coupling device is configured to receive optical input signals at a specific wavelength.

13. The system as claimed in claim 12 , comprising a plurality of wavelength demultiplexers coupled to input ports of the plurality of optical coupling devices and a plurality of wavelength multiplexers coupled to output ports of the plurality of optical coupling devices.

14. An integrated optical chip comprising an optical coupling device as claimed in claim 1 .

15. An optical coupling device for performing signal replication, comprising

a plurality of input channels;

a plurality of output channels;

a plurality of input coupling arrangements and a plurality of output coupling arrangements;

wherein each input coupling arrangement comprises a coupling channel, the input coupling arrangement being configured to couple an optical signal propagating through a corresponding input channel into the coupling channel with an adjustable coupling coefficient;

wherein each output coupling arrangement comprises a coupling channel, the output coupling arrangement being configured to couple an optical signal propagating through the coupling channel into a corresponding output channel with an adjustable coupling coefficient;

wherein each coupling channel, and/or each input channel, and/or each output channel, is provided with an amplitude adjuster comprising an attenuator followed by an optical amplifier;

wherein the input coupling arrangements and/or the output coupling arrangements comprise a phase shift element,

wherein the input coupling arrangements and/or the output coupling arrangements are implemented as interferometers; and

a controller configured to control the operation of the phase shift elements to set the adjustable coupling coefficients, so as to control an amount of optical signal propagating through the input channel when the phase shift element is part of an input coupling arrangement, and to control an amount of optical signal propagating through the output channel when the phase shift element is part of an output coupling arrangement,

wherein the controller is further configured to perform signal replication by

setting the adjustable coupling coefficients of the input coupling arrangements to couple an optical signal from a single input port to a plurality of coupling channels and to prevent coupling from other optical signals to other coupling channels; and

by turning on one or more optical amplifiers connected to the single input port, to address multiple output ports so that for each replicated signal an amplitude of the replicated signal is compensated for optical losses.

16. A method of manipulating an optical signal, the method comprising

providing an optical coupling device comprising a plurality of input channels; a plurality of output channels; and at least one of a plurality of input coupling arrangements and a plurality of output coupling arrangements;

wherein each input coupling arrangement comprises a coupling channel, the input coupling arrangement being configured to couple an optical signal propagating through a corresponding input channel into the coupling channel with an adjustable coupling coefficient; and

wherein each output coupling arrangement comprises a coupling channel, the output coupling arrangement being configured to couple an optical signal propagating through the coupling channel into a corresponding output channel with an adjustable coupling coefficient;

wherein each input channel, and/or each output channel is provided with an amplitude adjuster comprising an attenuator followed by an optical amplifier;

wherein the input coupling arrangements and/or the output coupling arrangements comprise a phase shift element;

wherein the input coupling arrangements and the output coupling arrangements are implemented as interferometers;

sending the optical signal through an input channel; and

operating the plurality of coupling arrangements with a controller to manipulate the optical signal; wherein the controller is configured to control the operation of the phase shift elements to set the adjustable coupling coefficients so as to control an amount of optical signal propagating through the input channel and to control an amount of optical signal propagating through the output channel.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 5, 2024
From: FELDMANN, JOHANNES; KEWADA, VAYSHNAVEE
To: SALIENCE LABS LTD
Reel/Frame 068186/0646 →
Priority Claims (2)
GB 2301018 · Jan 24, 2023 · national
GB 2310547 · Jul 10, 2023 · national
Continuity (1)
Related Publication 20240248367A1 · Jul 25, 2024
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