Characterizing the entanglement of symmetric many-particle spin-12 systems

John K. Stockton, J. M. Geremia, Andrew C. Doherty, and Hideo Mabuchi
Phys. Rev. A 67, 022112 – Published 28 February 2003
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Abstract

Analyzing the properties of entanglement in many-particle spin-1/2 systems is generally difficult because the system’s Hilbert space grows exponentially with the number of constituent particles, N. Fortunately, it is still possible to investigate a many-particle entanglement when the state of the system possesses sufficient symmetry. In this paper, we present a practical method for efficiently computing various bipartite entanglement measures for states in the symmetric subspace and perform these calculations for N103. By considering all possible bipartite splits, we construct a picture of the multiscale entanglement in large symmetric systems. In particular, we characterize dynamically generated spin-squeezed states by comparing them to known reference states (e.g., Greenberger-Horne-Zeilinger and Dicke states), and families of states with near-maximal bipartite entropy. We quantify the trade-off between the degree of entanglement and its robustness to particle loss, emphasizing that substantial entanglement need not be fragile.

  • Received 21 October 2002

DOI:https://doi.org/10.1103/PhysRevA.67.022112

©2003 American Physical Society

Authors & Affiliations

John K. Stockton*, J. M. Geremia, Andrew C. Doherty, and Hideo Mabuchi

  • Norman Bridge Laboratory of Physics 12-33, California Institute of Technology, Pasadena, California 91125

  • *Electronic address: jks@Caltech.EDU
  • Electronic address: jgeremia@Caltech.EDU

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Vol. 67, Iss. 2 — February 2003

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