Phys. Rev. B 77, 155111 (2008) [6 pages]Entanglement, fidelity, and topological entropy in a quantum phase transition to topological orderReceived 7 March 2008; published 9 April 2008 We present a numerical study of a quantum phase transition from a spin-polarized to a topologically ordered phase in a system of spin-1∕2 particles on a torus. We demonstrate that this non-symmetry-breaking topological quantum phase transition (TOQPT) is of second order. The transition is analyzed via the ground state energy and fidelity, block entanglement, Wilson loops, and the recently proposed topological entropy. Only the topological entropy distinguishes the TOQPT from a standard QPT, and remarkably, does so already for small system sizes. Thus the topological entropy serves as a proper order parameter. We demonstrate that our conclusions are robust under the addition of random perturbations, not only in the topological phase, but also in the spin-polarized phase and even at the critical point. © 2008 The American Physical Society URL:
http://link.aps.org/doi/10.1103/PhysRevB.77.155111
DOI:
10.1103/PhysRevB.77.155111
PACS:
03.65.Ud, 03.67.Mn, 05.50.+q
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