Chaos, entanglement, and decoherence in the quantum kicked top

Shohini Ghose, Rene Stock, Poul Jessen, Roshan Lal, and Andrew Silberfarb
Phys. Rev. A 78, 042318 – Published 20 October 2008

Abstract

We analyze the interplay of chaos, entanglement, and decoherence in a system of qubits whose collective behavior is that of a quantum kicked top. The dynamical entanglement between a single qubit and the rest can be calculated from the mean of the collective spin operators. This allows the possibility of efficiently measuring entanglement dynamics in an experimental setting. We consider a deeply quantum regime and show that signatures of chaos are present in the dynamical entanglement for parameters accessible in an experiment that we propose using cold atoms. The evolution of the entanglement depends on the support of the initial state on regular versus chaotic Floquet eigenstates, whose phase-space distributions are concentrated on the corresponding regular or chaotic eigenstructures. We include the effect of decoherence via a realistic model and show that the signatures of chaos in the entanglement dynamics persist in the presence of decoherence. In addition, the classical chaos affects the decoherence rate itself.

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  • Received 29 April 2008

DOI:https://doi.org/10.1103/PhysRevA.78.042318

©2008 American Physical Society

Authors & Affiliations

Shohini Ghose1, Rene Stock2, Poul Jessen3, Roshan Lal1,4, and Andrew Silberfarb5

  • 1Department of Physics and Computer Science, Wilfrid Laurier University, Waterloo, Ontario, Canada N2L 3C5
  • 2Department of Physics and Astronomy, University of Toronto, Ontario, Canada M5S 3H8
  • 3College of Optical Sciences, University of Arizona, Tucson, Arizona 85721, USA
  • 4Indian Institute of Technology, Kharagpur-721 302, India
  • 5Physical Measurement and Control, Edward L. Ginzton Laboratory, Stanford University, Palo Alto, California 94305, USA

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Issue

Vol. 78, Iss. 4 — October 2008

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