Decoherence in solid-state qubits

被引:133
|
作者
Chirolli, Luca [2 ]
Burkard, Guido [1 ]
机构
[1] Rhein Westfal TH Aachen, Inst Theoret Phys C, D-52054 Aachen, Germany
[2] Univ Konstanz, Dept Phys, D-78457 Constance, Germany
关键词
decoherence; quantum dots; spin qubits; spin coherence; superconducting qubits;
D O I
10.1080/00018730802218067
中图分类号
O469 [凝聚态物理学];
学科分类号
070205 ;
摘要
The interaction of solid-state qubits with environmental degrees of freedom strongly affects the qubit dynamics, and leads to decoherence. In quantum information processing with solid-state qubits, decoherence significantly limits the performances of such devices. Therefore, it is necessary to fully understand the mechanisms that lead to decoherence. In this review, we discuss how decoherence affects two of the most successful realizations of solid-state qubits, namely, spin qubits and superconducting qubits. In the former, the qubit is encoded in the spin 1/2 of the electron, and it is implemented by confining the electron spin in a semiconductor quantum dot. Superconducting devices show quantum behaviour at low temperatures, and the qubit is encoded in the two lowest energy levels of a superconducting circuit. The electron spin in a quantum dot has two main decoherence channels, a (Markovian) phonon-assisted relaxation channel, due to the presence of a spin-orbit interaction, and a (non-Markovian) spin bath constituted by the spins of the nuclei in the quantum dot that interact with the electron spin via the hyperfine interaction. In a superconducting qubit, decoherence takes place as a result of fluctuations in the control parameters, such as bias currents, applied flux and bias voltages, and via losses in the dissipative circuit elements.
引用
收藏
页码:225 / 285
页数:61
相关论文
共 50 条
  • [41] A central spin coordinates a nuclear crowd: Solid-state qubits
    Lei, Xia
    Zhai, Liang
    NATURE PHYSICS, 2025, 21 (03) : 334 - 335
  • [42] Asymptotic von Neumann measurement strategy for solid-state qubits
    Wilhelm, FK
    PHYSICAL REVIEW B, 2003, 68 (06)
  • [43] Hybrid Solid-State Qubits: The Powerful Role of Electron Spins
    Morton, John J. L.
    Lovett, Brendon W.
    ANNUAL REVIEW OF CONDENSED MATTER PHYSICS, VOL 2, 2011, 2 : 189 - 212
  • [44] Quantum control of electron and nuclear spin qubits in the solid-state
    Dutt, M. V. Gurudev
    Childress, L.
    Togan, E.
    Taylor, J. M.
    Jiang, L.
    Zibrov, A. S.
    Hemmer, P. R.
    Jelezko, F.
    Wrachtrup, J.
    Lukin, M. D.
    ATOMIC PHYSICS 20, 2006, 869 : 119 - +
  • [45] Metropolitan-scale heralded entanglement of solid-state qubits
    Stolk, Arian J.
    van der Enden, Kian L.
    Slater, Marie-Christine
    te Raa-Derckx, Ingmar
    Botma, Pieter
    van Rantwijk, Joris
    Biemond, J. J. Benjamin
    Hagen, Ronald A. J.
    Herfst, Rodolf W.
    Koek, Wouter D.
    Meskers, Adrianus J. H.
    Vollmer, Rene
    van Zwet, Erwin J.
    Markham, Matthew
    Edmonds, Andrew M.
    Geus, J. Fabian
    Elsen, Florian
    Jungbluth, Bernd
    Haefner, Constantin
    Tresp, Christoph
    Stuhler, Juergen
    Ritter, Stephan
    Hanson, Ronald
    SCIENCE ADVANCES, 2024, 10 (44):
  • [46] Solid-State Qubits: 3D Integration and Packaging
    Rosenberg, Danna
    Weber, Steven J.
    Conway, David
    Yost, Donna-Ruth W.
    Mallek, Justin
    Calusine, Gregory
    Das, Rabindra
    Kim, David
    Schwartz, Mollie E.
    Woods, Wayne
    Yoder, Jonilyn L.
    Oliver, William D.
    IEEE MICROWAVE MAGAZINE, 2020, 21 (08) : 72 - 85
  • [47] Design of realistic switches for coupling superconducting solid-state qubits
    Storcz, MJ
    Wilhelm, FK
    APPLIED PHYSICS LETTERS, 2003, 83 (12) : 2387 - 2389
  • [48] Coherent-state qubits:: entanglement and decoherence
    Asbóth, JK
    Adam, P
    Koniorczyk, M
    Janszky, J
    EUROPEAN PHYSICAL JOURNAL D, 2004, 30 (03): : 403 - 410
  • [49] Preserving entanglement and nonlocality in solid-state qubits by dynamical decoupling
    Lo Franco, R.
    D'Arrigo, A.
    Falci, G.
    Compagno, G.
    Paladino, E.
    PHYSICAL REVIEW B, 2014, 90 (05):
  • [50] Engineering the quantum-classical interface of solid-state qubits
    David J Reilly
    npj Quantum Information, 1