IP Library Patent Application 18162106
Patent Application
App. No. 18/162,106

PHASE SHIFTER FOR LOW OPTICAL LOSS IN OPTICAL COMMUNICATIONS SYSTEMS

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Quick Facts
Patent No.
US None
App. No.
18/162,106
Abstract

Aspects of the disclosure provide phase shifters as well as systems and methods in which those phase shifters may be utilized. For instance, a system may include a first communications terminal. The first optical communications terminal may include an optical phased array (OPA) architecture including a plurality of phase shifters configured to receive an optical communications beam from a second communications terminal. The plurality of phase shifters includes a first phase shifter consisting of silicon having a slab-contacted NPN junction scheme geometry. The first phase shifter may have a PN junction distance from waveguide center within a range 100 nm to 2 μm, inclusive, and a waveguide core width dimension within a range 500 nm to 2 μm, inclusive. The system may also include the second optical communications terminal.

Claims (26)

1 . A phase shifter consisting of silicon, the phase shifter having:

a slab-contacted NPN junction scheme geometry;

a PN junction distance from waveguide center within a range 100 nm to 2 μm, inclusive: and

a waveguide core width dimension within a range 500 nm to 2 μm, inclusive.

2 . The phase shifter of claim 1 , wherein the phase shifter is configured to operate under depletion modulation.

3 . The phase shifter of claim 1 , wherein the phase shifter includes a maximum optical loss on the order of 3 dB (decibels) or less.

4 . The phase shifter of claim 1 , wherein the slab-contacted NPN junction scheme geometry includes a single rib portion protruding from a slab portion.

5 . The phase shifter of claim 4 , wherein the rib portion and the slab portion each include each of which include continuous Na and Na regions.

6 . The phase shifter of claim 1 , wherein the phase shifter has a doping density in a range of 10 10 cm −3 to 10 17 cm 3 .

7 . The phase shifter of claim 1 , wherein the phase shifter has a dynamic switching energy of the phase shifter is less than 0.1 mWatt.

8 . The phase shifter of claim 1 , wherein the phase shifter has an acceptor concertation NA which ranges from 10 16 to 10 18 cm 3 inclusive.

9 . The phase shifter of claim 8 , wherein the phase shifter has a donor concentration Np which ranges from 10 16 to 10 18 cm −3 , inclusive.

10 . A system comprising:

a first communications terminal comprising:

an optical phased array (OPA) architecture including a plurality of phase shifters configured to receive an optical communications beam from a second communications terminal, wherein the plurality of phase shifters includes a first phase shifter consisting of silicon, the first phase shifter having:

a slab-contacted NPN junction scheme geometry;

a PN junction distance from waveguide center within a range 100 nm to 2 μm, inclusive; and

a waveguide core width dimension within a range 500 nm to 2 μm, inclusive

11 . The system of claim 12 , further comprising the second optical communications terminal, the second optical communications terminal having a second OPA architecture including a plurality of phase shifters configured to receive an optical communications beam from the first communications terminal, wherein the plurality of phase shifters includes a second phase shifter consisting of silicon.

12 . The system of claim 11 , wherein the second phase shifter has a PN junction distance from waveguide center within a range 100 nm to 2 μm, inclusive and a waveguide core width dimension within a range 500 mn to 2 μm, inclusive.

13 . A method comprising:

receiving, at a first communications terminal, light through an aperture;

passing the received light to a phase shifter of an OPA architecture, the phase shifter consisting of silicon and having (1) a slab-contacted NPN junction scheme geometry, (2) a PN junction distance from waveguide center within a range 100 nm to 2 μm, inclusive, and (3) a waveguide core width dimension within a range 500 nm to 2 μm, inclusive;

providing, using the phase shifter, the received light to receiver components including a sensor;

receiving, using the phase shifter, light to be transmitted; and

transmitting the light to be transmitted through the aperture and to a second communications terminal.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 26, 2025
From: X DEVELOPMENT LLC
To: TAARA CONNECT, INC.
Reel/Frame 070631/0734 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 1, 2023
From: BILODEAU, SIMON
To: X DEVELOPMENT LLC
Reel/Frame 062558/0356 →