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A global quench is an interesting setting where we can study thermalization of subsystems in a pure state.
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Cited alongside, same era.
H. Kim and D. A. Huse, “Ballistic spreading of entanglement in a diffusive nonintegrable system,” Phys. Rev. Lett
2013
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T. Hartman and J. Maldacena, “Time Evolution of Entanglement Entropy from Black Hole Interiors,” JHEP
2013
Cited alongside, same era.
I. A. Morrison and M. M. Roberts, “Mutual information between thermo-field doubles and disconnected holographic boundaries,” JHEP
2013
Cited alongside, same era.
H. Liu and S. J. Suh, “Entanglement Tsunami: Universal Scaling in Holographic Thermalization,” Phys. Rev. Lett
2014
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H. Liu and S. J. Suh, “Entanglement growth during thermalization in holographic systems,” Phys. Rev
2014
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2014
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2014
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2016
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Y. Lemonik and A. Mitra, “Entanglement properties of the critical quench of O (N ) bosons,” Phys. Rev. B
2016
Closest in time.
J. Maldacena, S. H. Shenker, and D. Stanford, “A bound on chaos,” JHEP
2016
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H. Casini, H. Liu, and M. Mezei, “Spread of entanglement and causality,” JHEP
2016
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P. Hosur, X.-L. Qi, D. A. Roberts, and B. Yoshida, “Chaos in quantum channels,” JHEP
2016
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S. Bhattacharyya, A. De, S. Minwalla, R. Mohan, and A. Saha, “A membrane paradigm at large D,” JHEP
2016
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H. Liu and M. Mezei, “A Refinement of entanglement entropy and the number of degrees of freedom,” JHEP
2070
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