Time evolution of entanglement entropy in quenched holographic superconductors

被引:0
作者
Xiaojian Bai
Bum-Hoon Lee
Li Li
Jia-Rui Sun
Hai-Qing Zhang
机构
[1] Georgia Institute of Technology,School of Physics
[2] Sogang University,Center for Quantum Spacetime
[3] Sogang University,Department of Physics
[4] University of Crete,Crete Center for Theoretical Physics, Department of Physics
[5] East China University of Science and Technology,Department of Physics and Institute of Modern Physics
[6] Utrecht University,Institute for Theoretical Physics
来源
Journal of High Energy Physics | / 2015卷
关键词
AdS-CFT Correspondence; Holography and condensed matter physics (AdS/CMT); Black Holes;
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摘要
We investigate the dynamical evolution of entanglement entropy in a holographic superconductor model by quenching the source term of the dual charged scalar operator. By access to the full background geometry, the holographic entanglement entropy is calculated for a strip geometry at the AdS boundary. It is found that the entanglement entropy exhibits a robust non-monotonic behaviour in time, independent of the strength of Gaussian quench and the size of the strip: it first displays a small dip, then grows linearly, and finally saturates. In particular, the linear growth velocity of the entanglement entropy has an upper bound for strip with large width; the equilibrium value of the non-local probe at late time shows a power law scaling behaviour with respect to the quench strength; moreover, the entanglement entropy can uncover the dynamical transition at certain critical quench strength which happens to coincide with the one obtained form the dynamical evolution of scalar order parameter.
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