IP Library Granted Patent US 12669645
Granted Patent B2
US 12669645 · App. 18/392,389 · Granted Jun 30, 2026

Arrayed waveguide multiplexing/demultiplexing device with phase correction

Inventor: Bruno Figeys (Heverlee, BE)
Assignee: Imec vzw
G02B6/12014G02B6/12021G01J3/0208G01J3/021G02B2006/12104G02B2006/12164
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Quick Facts
Patent No.
US 12669645
App. No.
18/392,389
Granted
Jun 30, 2026
Kind
B2
Abstract

An integrated photonics arrayed waveguide multiplexing/demultiplexing device is disclosed. The device includes an array of waveguides having an incident light waveguide section including a phase correcting region, a transmitted light waveguide section, a tunable reflector, wherein each pair of consecutive waveguides in the array includes a coupler. The coupler configured to combine light from the transmitted light waveguide sections, determine therefrom an optical phase difference between the two consecutive waveguides, and wherein the couplers are further configured to determine therefrom a change in optical path length required for each of two consecutive waveguides to reach a predetermined optical phase difference, and wherein each phase correcting region is configured to apply the change to correct the optical path length of the respective waveguide.

Claims (57)

1 . An integrated photonics arrayed waveguide multiplexing/demultiplexing device comprising:

a free propagation region comprising a first section and a second section;

a first waveguide coupled to the first section;

a plurality of output waveguides coupled to the first section;

an array of waveguides with increasing lengths between consecutive waveguides throughout the array and coupled to the second section, wherein each waveguide comprises:

an incident light waveguide section comprising a phase correcting region;

a transmitted light waveguide section;

a tunable reflector between the incident light waveguide section and the transmitted light waveguide section; wherein the tunable reflector is configured to act as a semi-transparent reflector for light propagating between the incident light waveguide section and the transmitted light waveguide section, thereby generating reflected light;

wherein the output waveguides are configured to collect the reflected light at least partially;

wherein each pair of consecutive waveguides in the array comprises a coupler configured to:

combine light propagating in the transmitted light waveguide sections of the two consecutive waveguides;

determine therefrom an optical phase difference between the two consecutive waveguides; and

wherein the couplers are further configured to determine therefrom a change in optical path length required for each of two consecutive waveguides in the array to reach a predetermined optical phase difference between the two consecutive waveguides;

and wherein each phase correcting region is configured to apply the change to correct the optical path length of the respective waveguide.

2 . The integrated photonics arrayed waveguide multiplexing/demultiplexing device according to claim 1 , wherein each of the transmitted light waveguide sections further comprises a power splitter configured to split the respective transmitted light waveguide section into two separate waveguides, a first separate waveguide and a second separate waveguide.

3 . The integrated photonics arrayed waveguide multiplexing/demultiplexing device according to claim 2 , wherein an outer waveguide in the array has a first length, and wherein each i th consecutive waveguide has a length equal to the sum of the first length and ΔL i , wherein ΔL i is the optical path length difference between the outer waveguide and the i th consecutive waveguide.

4 . The integrated photonics arrayed waveguide multiplexing/demultiplexing device according to claim 2 , wherein each coupler comprises a power combiner configured to combine light propagating in a first separate waveguide of one waveguide of a pair of consecutive waveguides in the array with light propagating in a second separate waveguide of the other waveguide of the pair of consecutive waveguides in the array.

5 . The integrated photonics arrayed waveguide multiplexing/demultiplexing device according to claim 4 , wherein the power combiner comprises one of the following:

a 2×1 multi-mode interferometer;

a 2×2 multi-mode interferometer;

a 2×3 multi-mode interferometer; and

a 2×4 multi-mode interferometer.

6 . The integrated photonics arrayed waveguide multiplexing/demultiplexing device according to claim 5 , wherein each coupler further comprises one or more photodetectors configured to determine the optical phase difference between the two consecutive waveguides.

7 . The integrated photonics arrayed waveguide multiplexing/demultiplexing device according to claim 4 , wherein an outer waveguide in the array has a first length, and wherein each i th consecutive waveguide has a length equal to the sum of the first length and ΔL i , wherein ΔL i is the optical path length difference between the outer waveguide and the i th consecutive waveguide.

8 . The integrated photonics arrayed waveguide multiplexing/demultiplexing device according to claim 1 , wherein each coupler comprises one or more directional couplers configured to combine light propagating in the two transmitted light waveguide sections of a pair of consecutive waveguides in the array.

9 . The integrated photonics arrayed waveguide multiplexing/demultiplexing device according to claim 8 , wherein an outer waveguide in the array has a first length, and wherein each i th consecutive waveguide has a length equal to the sum of the first length and ΔL i , wherein ΔL i is the optical path length difference between the outer waveguide and the i th consecutive waveguide.

10 . The integrated photonics arrayed waveguide multiplexing/demultiplexing device according to claim 1 , wherein an outer waveguide in the array has a first length, and wherein each i th consecutive waveguide has a length equal to the sum of the first length and ΔL i , wherein ΔL i is the optical path length difference between the outer waveguide and the i th consecutive waveguide.

11 . The integrated photonics arrayed waveguide multiplexing/demultiplexing device according to claim 10 , wherein the coupler of the outer waveguide or a last consecutive waveguide in the array is further configured to determine an intensity of light propagating in the transmitted light waveguide section of the respective outer waveguide or the last consecutive waveguide.

12 . The integrated photonics arrayed waveguide multiplexing/demultiplexing device according to claim 1 , wherein the tunable reflector is a Bragg reflector.

13 . The integrated photonics arrayed waveguide multiplexing/demultiplexing device according to claim 1 , wherein the free propagation region is a slab waveguide or a star coupler.

14 . The integrated photonics arrayed waveguide multiplexing/demultiplexing device according to claim 1 , wherein the phase correcting region comprises one or more of the following:

a phase shifter;

a capacitive phase shifter

one or more phase change materials;

a heater;

a waveguide section with a memory element;

a ferroelectric material;

a doped waveguide section;

a waveguide section to be trimmed with ions;

a waveguide section which can be annealed.

15 . The integrated photonics arrayed waveguide multiplexing/demultiplexing device according to claim 14 , wherein the one or more phase change materials are chosen from the group of GST, GSST, MoO, SbS, SbSe.

16 . The integrated photonics arrayed waveguide multiplexing/demultiplexing device according to claim 1 , wherein each coupler further comprises a grating coupler.

17 . The integrated photonics arrayed waveguide multiplexing/demultiplexing device according to claim 1 , wherein the integrated photonics arrayed waveguide multiplexing/demultiplexing device is a spectrometer.

18 . A method for correcting differences in optical path length in an integrated photonics arrayed waveguide multiplexing/demultiplexing device, the method comprising the steps of:

providing a free propagation region comprising a first section and a second section;

providing a first waveguide coupled to the first section;

providing a plurality of output waveguides coupled to the first section;

providing an array of waveguides with increasing lengths between consecutive waveguides throughout the array and coupled to the second section, wherein each waveguide comprises:

an incident light waveguide section comprising a phase correcting region;

a transmitted light waveguide section;

a tunable reflector between the incident light waveguide section and the transmitted light waveguide section; wherein the tunable reflector is configured to act as a semi-transparent reflector for light propagating between the incident light waveguide section and the transmitted light waveguide section, thereby generating reflected light;

collecting the reflected light at least partially in the output waveguides;

for each pair of consecutive waveguides in the array:

combining light propagating in the transmitted light waveguide sections of the two consecutive waveguides;

determining therefrom an optical phase difference between the two consecutive waveguides; and

determining therefrom a change in optical path length required for each of two consecutive waveguides in the array to reach a predetermined optical phase difference between the two consecutive waveguides; and

applying the change in each phase correcting region, thereby correcting the optical path length of the respective waveguide.