Nonequilibrium dynamics of one-dimensional hard-core anyons following a quench: Complete relaxation of one-body observables

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Abstract

We demonstrate the role of interactions in driving the relaxation of an isolated integrable quantum system following a sudden quench. We consider a family of integrable hard-core lattice anyon models that continuously interpolates between noninteracting spinless fermions and strongly interacting hard-core bosons. A generalized Jordan-Wigner transformation maps the entire family to noninteracting fermions. We find that, aside from the singular free-fermion limit, the entire single-particle density matrix and, therefore, all one-body observables relax to the predictions of the generalized Gibbs ensemble (GGE). This demonstrates that, in the presence of interactions, correlations between particles in the many-body wave function provide the effective dissipation required to drive the relaxation of all one-body observables to the GGE. This relaxation does not depend on translational invariance or the tracing out of any spatial domain of the system. © 2014 American Physical Society.

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Wright, T. M., Rigol, M., Davis, M. J., & Kheruntsyan, K. V. (2014). Nonequilibrium dynamics of one-dimensional hard-core anyons following a quench: Complete relaxation of one-body observables. Physical Review Letters, 113(5). https://doi.org/10.1103/PhysRevLett.113.050601

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