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Prethermalization has been extensively studied in systems close to integrability.
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M. Rigol, T. Bryant, and R. R. P. Singh, “Numerical Linked-Cluster Approach to Quantum Lattice Models,” Phys. Rev. Lett. 97
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J. Lukkarinen and H. Spohn, “Kinetic Limit for Wave Propagation in a Random Medium,” Arch. Rational Mech. Anal. 183
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M. Moeckel and S. Kehrein, “Interaction Quench in the Hubbard Model,” Phys. Rev. Lett. 100
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M. Rigol, V. Dunjko, and M. Olshanii, “Thermalization and its mechanism for generic isolated quantum systems,” Nature 452
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I. Bloch, J. Dalibard, and W. Zwerger, “Many-body physics with ultracold gases,” Rev. Mod. Phys. 80
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M. Moeckel and S. Kehrein, “Real-time evolution for weak interaction quenches in quantum systems,” Ann. Phys. 324
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M. Eckstein, M. Kollar, and P. Werner, “Thermalization after an Interaction Quench in the Hubbard Model,” Phys. Rev. Lett. 103
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M. Rigol, “Breakdown of Thermalization in Finite One-Dimensional Systems,” Phys. Rev. Lett. 103
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L. F. Santos and M. Rigol, “Onset of quantum chaos in one-dimensional bosonic and fermionic systems and its relation to thermalization,” Phys. Rev. E 81
2010
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M. Kollar, F. A. Wolf, and M. Eckstein, “Generalized Gibbs ensemble prediction of prethermalization plateaus and their relation to nonthermal steady states in integrable systems,” Phys. Rev. B 84
2011
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A. C. Cassidy, C. W. Clark, and M. Rigol, “Generalized Thermalization in an Integrable Lattice System,” Phys. Rev. Lett. 106
2011
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M. A. Cazalilla, R. Citro, T. Giamarchi, E. Orignac, and M. Rigol, “One dimensional bosons: From condensed matter systems to ultracold gases,” Rev. Mod. Phys. 83
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M. Gring, M. Kuhnert, T. Langen, T. Kitagawa, B. Rauer, M. Schreitl, I. Mazets, D. A. Smith, E. Demler, and J. Schmiedmayer, “Relaxation and Prethermalization in an Isolated Quantum System,” Science 337
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M. Tavora and A. Mitra, “Quench dynamics of one-dimensional bosons in a commensurate periodic potential: A quantum kinetic equation approach,” Phys. Rev. B 88
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J.-S. Caux and F. H. L. Essler, “Time Evolution of Local Observables After Quenching to an Integrable Model,” Phys. Rev. Lett. 110
L. Vidmar and M. Rigol, “Generalized Gibbs ensemble in integrable lattice models,” J. Stat. Mech., 064007 (2016)
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F. H. L. Essler and M. Fagotti, “Quench dynamics and relaxation in isolated integrable quantum spin chains,” J. Stat. Mech., 064002 (2016)
2016
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M. A. Cazalilla and M.-C. Chung, “Quantum quenches in the Luttinger model and its close relatives,” J. Stat. Mech., 064004 (2016)
2016
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J.-S. Caux, “The Quench Action,” J. Stat. Mech., 064006 (2016)
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L. D’Alessio, Y. Kafri, A. Polkovnikov, and M. Rigol, “From quantum chaos and eigenstate thermalization to statistical mechanics and thermodynamics,” Adv. Phys. 65
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2013
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W. De Roeck and A Kupiainen, “Diffusion for a Quantum Particle Coupled to Phonons in d ≥ 3 d\geq 3 ,” Commun. Math. Phys. 323
2013
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M. Marcuzzi, J. Marino, A. Gambassi, and A. Silva, “Prethermalization in a Nonintegrable Quantum Spin Chain after a Quench,” Phys. Rev. Lett. 111
2013
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N. Nessi, A. Iucci, and M. A. Cazalilla, “Quantum Quench and Prethermalization Dynamics in a Two-Dimensional Fermi Gas with Long-Range Interactions,” Phys. Rev. Lett. 113
2014
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F. H. L. Essler, S. Kehrein, S. R. Manmana, and N. J. Robinson, “Quench dynamics in a model with tuneable integrability breaking,” Phys. Rev. B 89
2014
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L. D’Alessio and M. Rigol, “Long-time Behavior of Isolated Periodically Driven Interacting Lattice Systems,” Phys. Rev. X 4
2014
Cited alongside, same era.
J. Lux, J. Müller, A. Mitra, and A. Rosch, “Hydrodynamic long-time tails after a quantum quench,” Phys. Rev. A 89
2014
Cited alongside, same era.
M. Rigol, “Quantum Quenches in the Thermodynamic Limit,” Phys. Rev. Lett. 112
2014
Cited alongside, same era.
E. Canovi, M. Kollar, and M. Eckstein, “Stroboscopic prethermalization in weakly interacting periodically driven systems,” Phys. Rev. E 93
2016
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T. Mori, T. Kuwahara, and K. Saito, “Rigorous Bound on Energy Absorption and Generic Relaxation in Periodically Driven Quantum Systems,” Phys. Rev. Lett. 116
2016
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T. Kuwahara, T. Mori, and K. Saito, “Floquet-Magnus theory and generic transient dynamics in periodically driven many-body quantum systems,” Ann. Phys. 367
2016
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M Rigol, “Fundamental Asymmetry in Quenches Between Integrable and Nonintegrable Systems,” Phys. Rev. Lett. 116
2016
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2016
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K. Mallayya and M. Rigol, “Numerical linked cluster expansions for quantum quenches in one-dimensional lattices,” Phys. Rev. E 95
2017
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Y. Tang, W. Kao, K.-Y. Li, S. Seo, K. Mallayya, M. Rigol, S. Gopalakrishnan, and B. L. Lev, “Thermalization near Integrability in a Dipolar Quantum Newton’s Cradle,” Phys. Rev. X 8
2018
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K. Mallayya and M. Rigol, “Quantum Quenches and Relaxation Dynamics in the Thermodynamic Limit,” Phys. Rev. Lett. 120
2018
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Z. Lenarčič, F. Lange, and A. Rosch, “Perturbative approach to weakly driven many-particle systems in the presence of approximate conservation laws,” Phys. Rev. B 97
2018
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F. Lange, Z. Lenarčič, and A. Rosch, “Time-dependent generalized Gibbs ensembles in open quantum systems,” Phys. Rev. B 97
2018
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E. Guardado-Sanchez, P. T. Brown, D. Mitra, T. Devakul, D. A. Huse, P. Schauß, and W. S. Bakr, “Probing the Quench Dynamics of Antiferromagnetic Correlations in a 2D Quantum Ising Spin System,” Phys. Rev. X 8
2018
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P. Reimann and L. Dabelow, “Typicality of prethermalization,” Phys. Rev. Lett. 122
2019
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