IP Library Granted Patent US 12,360,319
Granted Patent B2
US 12,360,319 · App. 18/073,321 · Granted Jul 15, 2025

Electro-optic frequency transducer using coupled microdisk resonators

Inventors: Ramesh Kudalippalliyalil (Los Angeles, CA); Sujith Chandran (Los Angeles, CA); Akhilesh Jaiswal (Los Angeles, CA); Ajey P. Jacob (Los Angeles, CA)
Assignee: UNIVERSITY OF SOUTHERN CALIFORNIA
G02B6/29341G02B6/12004G02F3/00G06N10/40G02F2203/15
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Quick Facts
Patent No.
US 12,360,319
App. No.
18/073,321
Granted
Jul 15, 2025
Kind
B2
Abstract

Provided is an electro-optic transducer comprising: a first optical disk resonator and a second optical disk resonator, wherein the first optical disk resonator and the second optical disk resonator are optically coupled; a waveguide, the waveguide optically coupled to at least one of the first optical disk resonator and the second optical disk resonator; and a resonator, the resonator functionally coupled to at least a portion of the first optical disk resonator and the second optical disk resonator.

Claims (42)

1. An electro-optic transducer comprising:

a first optical disk resonator and a second optical disk resonator, wherein the first optical disk resonator and the second optical disk resonator are optically coupled;

a waveguide, the waveguide being optically coupled to at least one of the first optical disk resonator and the second optical disk resonator; and

a resonator, the resonator being functionally coupled to at least a portion of the first optical disk resonator and the second optical disk resonator,

wherein the first optical disk resonator and the second optical disk resonator have radii between 10 and 50 μm, thicknesses between 300 and 1000 nm, and are separated by between 100 and 500 nm;

wherein the waveguide is separated from the first optical disk resonator by between 100 and 500 nm, and has a width between 1 and 2 μm; and

wherein an electrode of the resonator is separated from the first optical disk resonator and the second optical disk resonator by between 1 and 3 μm.

2. The electro-optic transducer of claim 1 , wherein the resonator comprises an inductor and a capacitor, the inductor being electrically coupled to the capacitor and the capacitor being functionally coupled to at least a portion of the first optical disk resonator and the second optical disk resonator.

3. The electro-optic transducer of claim 1 , wherein the resonator is a microwave resonator.

4. The electro-optic transducer of claim 1 , further comprising a qubit, wherein the resonator is communicatively coupled to a qubit.

5. The electro-optic transducer of claim 4 , wherein the qubit is a superconducting qubit.

6. The electro-optic transducer of claim 1 , wherein the first optical disk resonator and the second optical disk resonator have a substantially similar resonant frequency ω 0 .

7. The electro-optic transducer of claim 6 , the first optical disk resonator and the second optical disk resonator have split resonances at two frequencies ω l and ω u .

8. The electro-optic transducer of claim 7 , wherein the splitting comprises Autler-Townes splitting about a resonant frequency ω 0 .

9. The electro-optic transducer of claim 8 , wherein the first optical disk resonator and the second optical disk resonator are configured to be detuned an input microwave frequency Ω M .

10. The electro-optic transducer of claim 9 , wherein the detuning drives splitting with the relationship ω u =ω l +Ω M .

11. The electro-optic transducer of claim 2 , wherein an electric field of the capacitor, when in use, passes through at least a portion of the first optical disk resonator and the second optical disk resonator.

12. The electro-optic transducer of claim 1 , wherein the first optical disk resonator and the second optical disk resonators are whispering gallery mode resonators.

13. The electro-optic transducer of claim 1 ,

wherein the first optical disk resonator and the second optical disk resonator comprise aluminum nitride.

14. The electro-optic transducer of claim 2 , wherein the capacitor comprises a first electrode and a second electrode, wherein the first electrode electrically contacts the first optical disk resonator and wherein the second electrode electrically contacts the second optical disk resonator;

wherein the first electrode and the second electrode are connected in parallel; and

wherein the capacitor comprises a superconducting material.

15. The electro-optic transducer of claim 14 , wherein at least one of the capacitor and the inductor comprises niobium.

16. The electro-optic transducer of claim 2 , further comprising a bias capacitor,

wherein the bias capacitor is capacitively coupled to at least one electrode of the capacitor and wherein the bias capacitor is configured to tune the first optical disk resonator and the second optical disk resonator.

17. The electro-optic transducer of claim 2 , further comprising a top cladding,

wherein the inductor is separated from the first optical disk resonator and the second optical disk resonator by the top cladding;

wherein the top cladding is silicon dioxide; and

wherein the top cladding is between 400 and 500 nm in thickness.

18. A method for determining an output of a superconducting qubit,

the method comprising:

providing, by a waveguide, an optical frequency, to a first optical disk resonator,

wherein the first optical disk resonator is optically coupled to a second optical disk resonator,

wherein the first optical disk resonator and the second optical disk resonator have substantially similar resonant frequencies ω 0 , and

wherein the first optical disk resonator and the second optical disk resonator are functionally coupled to a microwave resonator;

detecting, via the waveguide, output of the first optical disk resonator; and

determining, based on the output, a microwave frequency Ω M applied to the microwave resonator, wherein determining the microwave frequency applied to the microwave resonator comprises:

detecting, based on the output, a first frequency ω l and a second frequency ω u , wherein the first frequency ω l and the second frequency ω u are split resonance frequencies about ω 0 ;

determining the microwave frequency Ω M applied to the microwave resonator by a relationship ω u =ω l +Ω M ; and

determining an output of a qubit based on the determined microwave frequency Ω M .

19. The method of claim 18 , wherein the qubit is coupled to the microwave resonator.

Assignments (2)
CONFIRMATORY LICENSE Recorded Jun 25, 2025
From: UNIVERSITY OF SOUTHERN CALIFORNIA
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 071703/0479 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 24, 2024
From: KUDALIPPALLIYALIL, RAMESH; CHANDRAN, SUJITH; JAISWAL, AKHILESH; JACOB, AJEY P.
To: UNIVERSITY OF SOUTHERN CALIFORNIA
Reel/Frame 066230/0223 →
Continuity (2)
Provisional Application 63285413 · Dec 2, 2021
Related Publication 20230314717A1 · Oct 5, 2023
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