IP Library Granted Patent US 10,916,821
Granted Patent B2
US 10,916,821 · App. 16/293,416 · Granted Feb 9, 2021

Metamaterial waveguides and shielded bridges for quantum circuits

Inventors: Oskar Painter (Sierra Madre, CA); Seyed Mohammad Mirhosseini Niri (Pasadena, CA); Eun Jong Kim (Pasadena, CA); Alp Sipahigil (Pasadena, CA); Vinicius Thaddeu dos Santos Ferreira (Pasadena, CA); Andrew J. Keller (Los Angeles, CA); Mahmoud Kalaee (Pasadena, CA); Michael T. Fang (Pasadena, CA)
Assignee: CALIFORNIA INSTITUTE OF TECHNOLOGY
H01P3/00G06N10/00G02F2202/30
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Quick Facts
Patent No.
US 10,916,821
App. No.
16/293,416
Granted
Feb 9, 2021
Kind
B2
Abstract

Metamaterial waveguides and shielded bridges are employed to improve the scalability and routing of quantum computing circuits. A metamaterial waveguide includes a signal conductor that has a periodic array of lumped element resonators distributed along and electrically coupled to a signal conductor. The periodic array of lumped element resonator pairs defines a bandgap within an operating bandwidth of the waveguide. Qubits can communicate within the operating bandwidth of the waveguide and communications via the waveguide can be controlled by changing a center frequency of the qubits. A shielded bridge is used to cross over high frequency communications and control CPW's in a quantum computing circuit. The shielded bridge includes a signal bridge that is elevated and extends over a separate CPW, and a ground bridge positioned between the signal bridge and the separate CPW.

Claims (11)

1. A waveguide for communicatively coupling qubits, the waveguide comprising:

a longitudinal signal conductor extending across a surface of a dielectric substrate;

a periodic array of lumped element resonators distributed along and electrically coupled to the signal conductor, wherein the resonators create a bandgap within an operating bandwidth of the waveguide; and

wherein all wavelengths within the bandgap are larger than geometrical extents of each of the resonators.

2. The waveguide of claim 1 wherein the qubits are configured to communicate within a communication band that is defined within the operating bandwidth.

3. The waveguide of claim 2 wherein a communication distance within which qubits can communicate via the waveguide is controlled in response to changing a center frequency of the communication band.

4. The waveguide of claim 3 wherein when operating within the bandgap, increasing the center frequency of the communication band results in an increase in communication distance within which qubits can communicate.

5. The waveguide of claim 1 wherein all wavelengths within the bandgap are at least 10 times larger than the geometrical extents of each of the resonators.

6. The waveguide of claim 1 wherein each of the resonators includes one or more capacitive and one or more inductive structures.

7. The waveguide of claim 1 wherein each of the resonators are capacitively coupled to the signal conductor.

8. The waveguide of claim 1 wherein the resonators are arranged in pairs that include a first resonator positioned on a first side of the signal conductor and a second resonator positioned opposite the first resonator on a second side of the signal conductor.

Assignments (2)
CONFIRMATORY LICENSE Recorded Dec 4, 2019
From: CALIFORNIA INSTITUTE OF TECHNOLOGY
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 051172/0705 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 1, 2019
From: PAINTER, OSKAR; MIRHOSSEINI NIRI, SEYED MOHAMMAD; KIM, EUN JONG; SIPAHIGIL, ALP; FERREIRA, VINICIUS THADDEU DOS SANTOS; KELLER, ANDREW J.; KALAEE, MAHMOUD; FANG, MICHAEL T.
To: CALIFORNIA INSTITUTE OF TECHNOLOGY
Reel/Frame 050913/0144 →
Continuity (3)
Provisional Application 62652765 · Apr 4, 2018
Provisional Application 62638755 · Mar 5, 2018
Related Publication 20200052359A1 · Feb 13, 2020
Cited By (1)
US 12,718,975