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Phys. Rev. A 77, 012112 (2008) [18 pages]

Quantum trajectory approach to circuit QED: Quantum jumps and the Zeno effect

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Jay Gambetta1,2, Alexandre Blais3, M. Boissonneault3, A. A. Houck1, D. I. Schuster1, and S. M. Girvin1
1Departments of Applied Physics and Physics, Yale University, New Haven, Connecticut 06520, USA
2Institute for Quantum Computing and Department of Physics and Astronomy, University of Waterloo, Waterloo, Ontario N2L 3G1, Canada
3Département de Physique et Regroupement Québécois sur les Matériaux de Pointe, Université de Sherbrooke, Sherbrooke, Québec J1K 2R1, Canada

Received 26 September 2007; revised 26 November 2007; published 25 January 2008

We present a theoretical study of a superconducting charge qubit dispersively coupled to a transmission line resonator. Starting from a master equation description of this coupled system and using a polaron transformation, we obtain an exact effective master equation for the qubit. We then use quantum trajectory theory to investigate the measurement of the qubit by continuous homodyne measurement of the resonator out field. Using the same polaron transformation, a stochastic master equation for the conditional state of the qubit is obtained. From this result, various definitions of the measurement time are studied. Furthermore, we find that in the limit of strong homodyne measurement, typical quantum trajectories for the qubit exhibit a crossover from diffusive to jumplike behavior. Finally, in the presence of Rabi drive on the qubit, the qubit dynamics is shown to exhibit quantum Zeno behavior.

© 2008 The American Physical Society

URL:
http://link.aps.org/doi/10.1103/PhysRevA.77.012112
DOI:
10.1103/PhysRevA.77.012112
PACS:
03.65.Yz, 42.50.Pq, 42.50.Lc, 74.50.+r