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Recently, several simple quantum mechanical toy models of black hole evaporation have appeared in the literature attempting to illuminate the black hole information paradox.
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S. D. Mathur, “The information paradox and the infall problem,” Class. Quant. Grav
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2007
Cited alongside, same era.
K. Skenderis and M. Taylor, “The fuzzball proposal for black holes,” Phys. Rept
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I. Bena and N. P. Warner, “Black holes, black rings and their microstates,” Lect. Notes Phys
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2008
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B. D. Chowdhury and S. D. Mathur, “Radiation from the non-extremal fuzzball,” Class. Quant. Grav
2008
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2008
Cited alongside, same era.
W. Unruh, “Decoherence without Dissipation,” arXiv:1205.6750 [quant-ph]
Cited in the paper.
2011
Closest in time.
S. L. Braunstein and M. K. Patra, “Black hole evaporation rates without spacetime,” Phys. Rev. Lett
2011
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2011
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S. B. Giddings, “Models for unitary black hole disintegration,” arXiv:1108.2015 [hep-th]
2015
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S. G. Avery, B. D. Chowdhury, and S. D. Mathur, “Emission from the D1D5 CFT,” JHEP
2015
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Y. Sekino and L. Susskind, “Fast Scramblers,” JHEP
2096
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