IP Library Granted Patent US 10,858,239
Granted Patent B2
US 10,858,239 · App. 16/293,455 · Granted Dec 8, 2020

Techniques for transduction and storage of quantum level signals

Inventors: Oskar Painter (Sierra Madre, CA); Jie Luo (Pasadena, CA); Michael T. Fang (Pasadena, CA); Alp Sipahigil (Pasadena, CA); Paul B. Dieterle (Somerville, MA); Mahmoud Kalaee (Pasadena, CA); Johannes M. Fink (Klosterneuburg, AT); Andrew J. Keller (Los Angeles, CA); Gregory MacCabe (Los Angeles, CA); Hengjiang Ren (Pasadena, CA); Justin D. Cohen (Annadale, VA)
Assignee: CALIFORNIA INSTITUTE OF TECHNOLOGY
B81B3/0029B81B3/0021B82Y10/00B82Y20/00B82Y40/00G01H11/08G06N10/00G11C13/025
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Quick Facts
Patent No.
US 10,858,239
App. No.
16/293,455
Granted
Dec 8, 2020
Kind
B2
Abstract

Embodiments described herein include systems and techniques for converting (i.e., transducing) a quantum-level (e.g., single photon) signal between the three wave forms (i.e., optical, acoustic, and microwave). A suspended crystalline structure is used at the nanometer scale to accomplish the desired behavior of the system as described in detail herein. Transducers that use a common acoustic intermediary transform optical signals to acoustic signals and vice versa as well as microwave signals to acoustic signals and vice versa. Other embodiments described herein include systems and techniques for storing a qubit in phonon memory having an extended coherence time. A suspended crystalline structure with specific geometric design is used at the nanometer scale to accomplish the desired behavior of the system.

Claims (16)

1. A system for transducing and storing a qubit signal, comprising:

a suspended crystalline transducer for converting the qubit signal between a microwave form and an acoustic form when the suspended crystalline transducer oscillates at a tuning frequency; and

a suspended crystalline structure coupled to the suspended crystalline transducer, the suspended crystalline structure comprising a plurality of acoustic cavities chained together, wherein the acoustic cavities are of differing sizes to store the qubit signal in acoustic form when the suspended crystalline transducer oscillates at the tuning frequency wherein a plurality of suspended crystalline structures, disposed in a geometric design to isolate the qubit signal in acoustic form, surround the suspended crystalline transducer and the suspended crystalline structure.

2. The system for transducing the qubit signal of claim 1 , wherein the suspended crystalline transducer comprises a piezoelectric material overlay of a second suspended crystalline structure.

3. The system for transducing the qubit signal of claim 2 , wherein the piezoelectric material comprises Aluminum Nitride.

4. The system for transducing the qubit signal of claim 2 , further comprising:

a plurality of conductors that are electrically coupled to the piezoelectric material overlay of the second suspended crystalline structure, wherein the plurality of conductors form an interleaved pattern and provide alternating polarity electrical signals to the piezoelectric material to generate an oscillation at the tuning frequency.

5. The system for transducing the qubit signal of claim 4 , wherein the plurality of conductors comprise aluminum.

6. The system for transducing the qubit signal of claim 1 , wherein:

the suspended crystalline transducer comprises a second suspended crystalline structure and a plurality of conductors overlaying the second suspended crystalline structure;

the plurality of conductors are configured to form a plurality of capacitive features;

during transduction, the plurality of capacitive features oscillate at the tuning frequency to generate a changing capacitance; and

the qubit signal in acoustic form is generated based on the changing capacitance.

7. The system for transducing the qubit signal of claim 1 , wherein the suspended crystalline transducer and the suspended crystalline structure each comprise silicon.

8. The system for transducing the qubit signal of claim 1 , wherein the suspended crystalline transducer and the suspended crystalline structure are disposed in a single crystal silicon layer of a silicon-on-insulator substrate.

9. The system for transducing the qubit signal of claim 1 , wherein the qubit signal is swapped between the suspended crystalline transducer and the suspended crystalline structure when the suspended crystalline transducer oscillates at the tuning frequency.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 6, 2020
From: PAINTER, OSKAR; LUO, JIE; FANG, MICHAEL T.; SIPAHIGIL, ALP; DIETERLE, PAUL B.; KALAEE, MAHMOUD; FINK, JOHANNES M.; KELLER, ANDREW J.; MACCABE, GREGORY; REN, HENGJIANG; COHEN, JUSTIN D.
To: CALIFORNIA INSTITUTE OF TECHNOLOGY
Reel/Frame 053989/0859 →
Continuity (6)
Provisional Application 62652197 · Apr 3, 2018
Provisional Application 62652194 · Apr 3, 2018
Provisional Application 62652200 · Apr 3, 2018
Provisional Application 62638829 · Mar 5, 2018
Provisional Application 62638817 · Mar 5, 2018
Related Publication 20200062583A1 · Feb 27, 2020
Cited By (2)
US 12,346,001 US 12,718,975