IP Library Patent Application 19345528
Patent Application
App. No. 19/345,528

PHASE SHIFTER EMPLOYING ELECTRO-OPTIC MATERIAL SANDWICH

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Quick Facts
Patent No.
US None
App. No.
19/345,528
Abstract

Electro-optical devices and methods for constructing electro-optical devices such as a switch or phase shifter. An electrode layer is deposited on a substrate layer, a waveguide structure is deposited on the electrode layer, a first cladding layer is deposited on the waveguide structure, and the first cladding layer is planarized and bonded to a wafer. The substrate layer is removed and the electrode layer is etched to split the electrode layer into a first electrode separated from a second electrode. A second cladding layer is deposited on the etched electrode layer. The first and second electrodes may be composed of a material with a large dielectric constant, or they may be composed of a material with a large electron mobility. The device may exhibit a sandwich waveguide architecture where an electro-optic layer is disposed between two strip waveguides.

Claims (85)

1 . (canceled)

2 . An electro-optic device, comprising:

a first cladding layer;

a first electrode;

a second electrode;

a second cladding layer;

a waveguide structure, comprising:

a first waveguide portion composed of a first material;

a second waveguide portion composed of a second material; and

an electro-optic layer composed of a third material, wherein the electro-optic layer is disposed between the first and second cladding layers, wherein the electro-optic layer is disposed between the first waveguide portion and the second waveguide portion, wherein the electro-optic layer is coupled to the first electrode and the second electrode, wherein the electro-optic layer abuts the first waveguide portion, and wherein a cladding layer gap of the first cladding layer is disposed between the second waveguide portion and the electro-optic layer.

3 . The device of claim 2 ,

wherein the first and second waveguides are configured to concentrate an optical mode within the electro-optic layer.

4 . The device of claim 2 ,

wherein the first material comprises silicon nitride, and

wherein the second material comprises silicon.

5 . The device of claim 2 ,

wherein the first waveguide portion is disposed between and abuts the first and second electrodes.

6 . An electro-optic device, comprising:

a first cladding layer;

a first electrode;

a second electrode;

a waveguide structure comprising an electro-optic layer composed of a first material, a first waveguide portion composed of a second material, and a second waveguide portion composed of a third material, wherein the electro-optic layer is disposed between the first waveguide portion and the second waveguide portion, and wherein the electro-optic layer is coupled to the first electrode and the second electrode; and

a second cladding layer.

7 . The device of claim 6 ,

wherein the first electrode and the second electrode abut the first waveguide, wherein the first electrode and the second electrode have a first thickness.

8 . The device of claim 6 ,

wherein the first and second waveguides are configured to concentrate an optical mode within the electro-optic layer.

9 . The device of claim 6 ,

wherein the first waveguide abuts the first cladding layer, and

wherein the second waveguide abuts the second cladding layer.

10 . The device of claim 6 , further comprising:

a first lead coupled to the first electrode; and

a second lead coupled to the second electrode.

11 . The device of claim 6 ,

wherein the second and third materials comprise silicon nitride.

12 . The device of claim 6 ,

wherein the second material comprises silicon nitride, and

wherein the third material comprises silicon.

13 . The device of claim 6 ,

wherein the first and second electrodes are composed of one of:

gallium arsenide (GaAs);

an aluminum gallium arsenide (AlGaAs)/GaAs heterostructure;

an indium gallium arsenide (InGaAs)/GaAs heterostructure;

zinc oxide (ZnO);

zinc sulfide (ZnS);

indium oxide (InO);

doped silicon;

a two-dimensional electron gas; or

doped strontium oxide.

14 . The device of claim 13 ,

wherein the doped strontium titanate is either:

niobium doped;

lanthanum doped; or

vacancy doped.

15 . The device of claim 6 ,

wherein the first material comprises one of:

barium titanate;

barium strontium titanate;

lead zirconium titanate;

lead lanthanum zirconium titanate; or

strontium barium niobate.

16 . The device of claim 6 , further comprising:

a cryogenic device configured to maintain the first electrode, the second electrode, and the first material at or below 77 Kelvin.

17 . The device of claim 6 ,

wherein the first electrode and the second electrode are configured to generate an electric field along an x-direction in the waveguide structure, and

wherein the waveguide structure is characterized by an electro-optic coefficient having a nonzero value aligned along the x-direction.

18 . The device of claim 6 ,

wherein the first electrode and the second electrode comprise a second layer coplanar to the electro-optic layer and disposed adjacent to a first side of the electro-optic layer.

19 . The device of claim 6 , wherein the first material comprises a transparent material having an index of refraction that is larger than an index of refraction of the first and second cladding layers.

20 . A method for constructing a device, the method comprising:

receiving a first wafer comprising a first layer stack, wherein the first layer stack comprises:

a substrate layer;

an electrode layer disposed on the substrate layer;

an electro-optic layer disposed on the seed layer;

receiving a second wafer, the second wafer comprising a second waveguide structure disposed within a second cladding layer;

bonding the first layer stack to the second wafer such that the electro-optic layer is within a predetermined distance of the second waveguide structure;

removing the substrate layer;

etching the electrode layer to form, in the electrode layer, a first electrode separated from a second electrode;

depositing a first waveguide structure between the first and second electrodes; and

depositing a first cladding layer on the first and second electrodes and the first waveguide structure.

21 . The method of claim 20 , the method further comprising:

etching the first cladding layer to expose a first portion of the first electrode;

etching the first cladding layer to expose a second portion of the second electrode;

depositing a first lead onto the first electrode through the exposed first portion; and

depositing a second lead onto the second electrode through the exposed second portion.