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Robust entanglement in antiferromagnetic Heisenberg chains by single-spin optimal control

2009/11/30 by Xiaoting Wang, Abolfazl Bayat, S. G. Schirmer +2 · 57 citations
Computer Science · Mathematics · Physics and Astronomy · #Antiferromagnetism #Condensed matter physics #Heisenberg model #Isotropy #Mathematics #Physics #Quantum #Quantum Information and Cryptography #Quantum and electron transport phenomena #Quantum decoherence #Quantum entanglement #Quantum many-body systems #Quantum mechanics #Spin (aerodynamics) #Spins #Subspace topology #Thermal #quant-ph

paper · pdf · doi:10.1103/physreva.81.032312

published in Physical Review A 81(3) (American Physical Society) · 10 pages, revtex

openalex publication_date 2010/03/11 · arxiv created 2010/03/13 · arxiv updated 2010/03/16 · openalex created_date 2025/10/10 · openalex updated_date 2026/08/05

Abstract

We demonstrate how near-perfect entanglement (in fact arbitrarily close to maximal entanglement) can be generated between the end spins of an antiferromagnetic isotropic Heisenberg chain of length N, starting from the ground state in the N/2 excitation subspace, by applying a magnetic field along a given direction, acting on a single spin only. Temporally optimal magnetic fields to generate a singlet pair between the two end spins of the chain are calculated for chains up to length 20 using optimal control theory. The optimal fields are shown to remain effective in various nonideal situations including thermal fluctuations, magnetic field leakage, random system couplings, and decoherence. Furthermore, the quality of the entanglement generated can be substantially improved by taking these imperfections into account in the optimization. In particular, the optimal pulse of a given thermal initial state is also optimal for any other initial thermal state with lower temperature.

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