Quantum Rifling: Protecting a Qubit from Measurement Back Action

被引:14
|
作者
Szombati, Daniel [1 ,2 ]
Frieiro, Alejandro Gomez [1 ,2 ]
Mueller, Clemens [3 ]
Jones, Tyler [1 ,2 ]
Jerger, Markus [1 ,2 ]
Fedorov, Arkady [1 ,2 ]
机构
[1] ARC Ctr Excellence Engineered Quantum Syst, St Lucia, Qld 4072, Australia
[2] Univ Queensland, Sch Math & Phys, St Lucia, Qld 4072, Australia
[3] IBM Res Zurich, CH-8803 Ruschlikon, Switzerland
基金
澳大利亚研究理事会; 瑞士国家科学基金会;
关键词
D O I
10.1103/PhysRevLett.124.070401
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Quantum mechanics postulates that measuring the qubit's wave function results in its collapse, with the recorded discrete outcome designating the particular eigenstate that the qubit collapsed into. We show that this picture breaks down when the qubit is strongly driven during measurement. More specifically, for a fast evolving qubit the measurement returns the time-averaged expectation value of the measurement operator, erasing information about the initial state of the qubit while completely suppressing the measurement backaction. We call this regime quantum rifling, as the fast spinning of the Bloch vector protects it from deflection into either of its eigenstates. We study this phenomenon with two superconducting qubits coupled to the same probe field and demonstrate that quantum rifling allows us to measure either one of the qubits on demand while protecting the state of the other from measurement backaction. Our results allow for the implementation of selective readout multiplexing of several qubits, contributing to the efficient scaling up of quantum processors for future quantum technologies.
引用
收藏
页数:6
相关论文
共 50 条
  • [21] Quantum Back-Action of an Individual Variable-Strength Measurement
    Hatridge, M.
    Shankar, S.
    Mirrahimi, M.
    Schackert, F.
    Geerlings, K.
    Brecht, T.
    Sliwa, K. M.
    Abdo, B.
    Frunzio, L.
    Girvin, S. M.
    Schoelkopf, R. J.
    Devoret, M. H.
    SCIENCE, 2013, 339 (6116) : 178 - 181
  • [22] On the back-action of THz measurement on the total current of quantum devices
    Marian, D.
    Zanghi, N.
    Oriols, X.
    2014 INTERNATIONAL WORKSHOP ON COMPUTATIONAL ELECTRONICS (IWCE), 2014,
  • [23] Motional quantum states of a trapped ion: measurement and its back action
    Wallentowitz, S.
    Vogel, W.
    Physical Review A. Atomic, Molecular, and Optical Physics, 1996, 54 (04):
  • [24] BACK-ACTION IN THE MEASUREMENT OF MACROSCOPIC QUANTUM SUPERPOSITIONS IN MICROWAVE CAVITIES
    ZAUGG, T
    WILKENS, M
    MEYSTRE, P
    FOUNDATIONS OF PHYSICS, 1993, 23 (06) : 857 - 871
  • [25] Protecting quantum Fisher information of N-qubit GHZ state by weak measurement with flips against dissipation
    Chen, Yu
    Zou, Jian
    Long, Zheng-Wen
    Shao, Bin
    SCIENTIFIC REPORTS, 2017, 7
  • [26] Protecting quantum Fisher information of N-qubit GHZ state by weak measurement with flips against dissipation
    Yu Chen
    Jian Zou
    Zheng-wen Long
    Bin Shao
    Scientific Reports, 7
  • [27] Protecting entanglement from decoherence using weak measurement and quantum measurement reversal
    Yong-Su Kim
    Jong-Chan Lee
    Osung Kwon
    Yoon-Ho Kim
    Nature Physics, 2012, 8 (2) : 117 - 120
  • [28] Protecting entanglement from decoherence using weak measurement and quantum measurement reversal
    Kim, Yong-Su
    Lee, Jong-Chan
    Kwon, Osung
    Kim, Yoon-Ho
    QUANTUM COMMUNICATIONS AND QUANTUM IMAGING XI, 2013, 8875
  • [29] Protecting entanglement from decoherence using weak measurement and quantum measurement reversal
    Kim, Yong-Su
    Lee, Jong-Chan
    Kwon, Osung
    Kim, Yoon-Ho
    NATURE PHYSICS, 2012, 8 (02) : 117 - 120
  • [30] Protecting Entanglement From Decoherence Via Weak Quantum Measurement
    Kim, Y. -S.
    Lee, Jong-Chan
    Kwon, Osung
    Kim, Yoon-Ho
    2013 CONFERENCE ON LASERS AND ELECTRO-OPTICS PACIFIC RIM (CLEO-PR), 2013,