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This article presents an effective quantum extension of the seminal Oppenheimer-Snyder (OS) collapse in which the singularity resolution is modeled using the effective dynamics of the spatially closed loop quantum cosmology.
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J. L. Dupuy and P. Singh, “Hysteresis and beats in loop quantum cosmology,” arXiv:1912.11490
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M. Bojowald, R. Goswami, R. Maartens, and P. Singh, “A Black hole mass threshold from non-singular quantum gravitational collapse,” Phys. Rev. Lett. 95
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A. Ashtekar and M. Bojowald, “Quantum geometry and the Schwarzschild singularity,” Class. Quant. Grav. 23
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A. Ashtekar, T. Pawlowski, P. Singh and K. Vandersloot, “Loop quantum cosmology of k=1 FRW models,” Phys. Rev. D 75
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L. Modesto, “Black hole interior from loop quantum gravity,” Adv. High Energy Phys. 2008
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A. Ashtekar and P. Singh, “Loop Quantum Cosmology: A Status Report,” Class. Quant. Grav. 28
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C. Rovelli, “Planck stars as observational probes of quantum gravity,” Nat. Astron. 1
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R. Gambini and J. Pullin, “Loop quantization of the Schwarzschild black hole,” Phys. Rev. Lett. 110
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J. M.M. Senovilla, “Junction conditions for F(R)-gravity and their consequences,” Phys. Rev. D 88
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C. Rovelli and F. Vidotto, “Planck stars,” Int. J. Mod. Phys. D23
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A. Barrau and C. Rovelli, “Planck star phenomenology,” Phys. Lett. B739
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R. Brandenberger and P. Peter, “Bouncing Cosmologies: Progress and Problems,” Found. Phys. 47
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C. Rovelli and F. Vidotto, “Pre-Big-Bang Black-Hole Remnants and Past Low Entropy,” Universe 4
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C. Rovelli and F. Vidotto, “Small black/white hole stability and dark matter,” Universe 4
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A. Ashtekar, J. Olmedo and P. Singh, “Quantum extension of the Kruskal spacetime,” Phys. Rev. D 98
2018
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