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      Universal front propagation in the quantum Ising chain with domain-wall initial states

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          Abstract

          We study the melting of domain walls in the ferromagnetic phase of the transverse Ising chain, created by flipping the order-parameter spins along one-half of the chain. If the initial state is excited by a local operator in terms of Jordan-Wigner fermions, the resulting longitudinal magnetization profiles have a universal character. Namely, after proper rescalings, the profiles in the noncritical Ising chain become identical to those obtained for a critical free-fermion chain starting from a step-like initial state. The relation holds exactly in the entire ferromagnetic phase of the Ising chain and can even be extended to the zero-field XY model by a duality argument. In contrast, for domain-wall excitations that are highly non-local in the fermionic variables, the universality of the magnetization profiles is lost. Nevertheless, for both cases we observe that the entanglement entropy asymptotically saturates at the ground-state value, suggesting a simple form of the steady state.

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          Author and article information

          Journal
          2016-10-05
          Article
          1610.01540
          46575bc8-7262-42ba-9325-748348420ef9

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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          19 pages, 6 figures
          cond-mat.stat-mech

          Condensed matter
          Condensed matter

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