Hybrid Quantum Systems for Higher Temperature Quantum Information Processing

被引:1
|
作者
Miller, John H. H. [1 ,2 ]
Villagran, Martha Y. Suarez Y. [1 ,2 ]
Sanderson, Johnathan O. O. [1 ,2 ]
Wosik, Jarek [1 ,3 ]
机构
[1] Univ Houston, Texas Ctr Superconduct, Houston, TX 77204 USA
[2] Univ Houston, Dept Phys, Houston, TX 77204 USA
[3] Univ Houston, UH Dept Elect & Comp Engn, Houston, TX 77204 USA
关键词
Qubit; Dielectrics; Inductance; Energy states; Superconducting transition temperature; Couplings; Voltage; quantum computing; qubit; superconducting devices; superconducting films; STATE;
D O I
10.1109/TASC.2023.3241131
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
The ability to operate superconducting quantum computers at higher temperatures would greatly expand their utility and range of applications. This could be achieved by increasing resonance frequencies and/or utilizing collective modes that are less noisy and more robust against decoherence. We discuss several nonlinear resonator concepts in which the roles of linear and nonlinear elements are reversed vs. the transmon. The simplest version is a nonlinear LC resonator with a linear superconducting inductor and a nonlinear capacitor employing a nonlinear dielectric material. Due to progress in tunable dielectrics for 6G, some ferroelectric composites may enable operation of a nonlinear dielectric - superconductor qubit at hundreds of gigahertz. Other nonlinear dielectric materials include quantum paraelectrics and charge density wave materials. These are of interest due to robust collective modes resulting from macroscopically occupied states. Other proposed nonlinear resonators employing nonlinear dielectrics include quarter- and half-wavelength resonators. Voltage tunability is a potential feature of the proposed concepts.
引用
收藏
页数:4
相关论文
共 50 条
  • [21] Quantum computation and quantum information processing
    Qu, Fanming
    Cheng, Zhigang
    Zhao, Shiping
    Zheng, Dongning
    Jin, Yirong
    Xia, Lin
    Wang, Ruquan
    Liu, Gangqin
    Pan, Xinyu
    Liu, Baoli
    Zhou, Duanlu
    Lu, Li
    Fan, Heng
    SCIENCE, 2018, 360 (6389) : 26 - 30
  • [22] Quantum Information Processing with Quantum Optics
    J. I. Cirac
    L.-M. Duan
    D. Jaksch
    P. Zoller
    Annales Henri Poincaré, 2003, 4 : 759 - 781
  • [23] Quantum teleportation and quantum information processing
    Furusawa, Akira
    QUANTUM COMMUNICATION, MEASUREMENT AND COMPUTING (QCMC): THE TENTH INTERNATIONAL CONFERENCE, 2011, 1363
  • [24] Quantum teleportation and quantum information processing
    Furusawa, Akira
    2010 CONFERENCE ON LASERS AND ELECTRO-OPTICS (CLEO) AND QUANTUM ELECTRONICS AND LASER SCIENCE CONFERENCE (QELS), 2010,
  • [25] Quantum parallelism in quantum information processing
    Dugic, M
    Cirkovic, MM
    INTERNATIONAL JOURNAL OF THEORETICAL PHYSICS, 2002, 41 (09) : 1641 - 1649
  • [26] Toward room-temperature quantum information processing
    Fischer, AL
    PHOTONICS SPECTRA, 2006, 40 (01) : 142 - +
  • [27] Quantum information processing in electrically defined Silicon triple quantum dot systems
    Kang, Ji-Hoon
    Ryu, Hoon
    SOLID-STATE ELECTRONICS, 2024, 213
  • [28] Quantum information processing
    Briggs, A
    Ferry, D
    Stoneham, M
    JOURNAL OF PHYSICS-CONDENSED MATTER, 2006, 18 (21)
  • [29] Quantum Information Processing
    Vermeer, Bram
    Buhrman, Harry
    ERCIM NEWS, 2007, (71): : 53 - 54
  • [30] Indistinguishability of Elementary Systems as a Resource for Quantum Information Processing
    Lo Franco, Rosario
    Compagno, Giuseppe
    PHYSICAL REVIEW LETTERS, 2018, 120 (24)