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The tidal disruption of stars by (super-)massive black holes in galactic nuclei has been discussed in theoretical terms for about 30 years but only in the past decade have we been able to detect such events in substantial numbers.
Rees, M. J., 1988: “Tidal disruption of stars by black holes of 10 to the 6th-10 to the 8th solar masses in nearby galaxies”, Nature, 333
1988
Earlier work this paper cites.
Ulmer, A., 1999: “Flares from the Tidal Disruption of Stars by Massive Black Holes”, ApJ, 514
1999
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Kobayashi, S., Laguna, P., Phinney, E. S., & Mészáros, P., 2004: “Gravitational Waves and X-Ray Signals from Stellar Disruption by a Massive Black Hole”, ApJ, 615
2004
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Amaro-Seoane, P., Gair, J. R., Freitag, M., et al., 2007: “TOPICAL REVIEW: Intermediate and extreme mass-ratio inspirals – astrophysics, science applications and detection using LISA”, Classical and Quantum Gravity
2007
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Kunugise, T., & Iwamoto, K., 2007: “Neutrino Emission from Type Ia Supernovae”, PASJ, 59
2007
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King, A. R., Pringle, J. E., & Hofmann, J. A., 2008: “The evolution of black hole mass and spin in active galactic nuclei”, MNRAS, 385
2008
Earlier work this paper cites.
Rosswog, S., Ramirez-Ruiz, E., & Hix, W. R., 2008: “Atypical Thermonuclear Supernovae from Tidally Crushed White Dwarfs”, ApJ, 679
2008
Earlier work this paper cites.
Sesana, A., Vecchio, A., Eracleous, M., & Sigurdsson, S., 2008: “Observing white dwarfs orbiting massive black holes in the gravitational wave and electro-magnetic window”, MNRAS, 391
2008
Earlier work this paper cites.
Guillochon, J., Ramirez-Ruiz, E., Rosswog, S., & Kasen, D., 2009: “Three-dimensional Simulations of Tidally Disrupted Solar-type Stars and the Observational Signatures of Shock Breakout”, ApJ, 705
2009
Earlier work this paper cites.
—, 2009: “Tidal Disruption and Ignition of White Dwarfs by Moderately Massive Black Holes”, ApJ, 695
2009
Earlier work this paper cites.
Zalamea, I., Menou, K., & Beloborodov, A. M., 2010: “White dwarfs stripped by massive black holes: sources of coincident gravitational and electromagnetic radiation”, MNRAS, 409
2010
Earlier work this paper cites.
Clausen, D., & Eracleous, M., 2011: “Probing Intermediate-mass Black Holes with Optical Emission Lines from Tidally Disrupted White Dwarfs”, ApJ, 726
2011
Earlier work this paper cites.
van Velzen, S., Farrar, G. R., Gezari, S., et al., 2011: “Optical Discovery of Probable Stellar Tidal Disruption Flares”, ApJ, 741
2011
Cited alongside, same era.
Clausen, D., Sigurdsson, S., Eracleous, M., & Irwin, J. A., 2012: “Luminous [O III] and [N II] from tidally disrupted horizontal branch stars”, MNRAS, 424
2012
Cited alongside, same era.
Volonteri, M., 2012: “The Formation and Evolution of Massive Black Holes”, Science
2012
Cited alongside, same era.
Dai, L., & Blandford, R., 2013: “Roche accretion of stars close to massive black holes”, Monthly Notices of the Royal Astronomical Society
2013
Cited alongside, same era.
Reines, A. E., Greene, J. E., & Geha, M., 2013: “Dwarf Galaxies with Optical Signatures of Active Massive Black Holes”, ApJ, 775
2013
Cited alongside, same era.
MacLeod, M., Trenti, M., & Ramirez-Ruiz, E., 2016: “The Close Stellar Companions to Intermediate-mass Black Holes”, ApJ, 819
2016
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Wright, W. P., Nagaraj, G., Kneller, J. P., Scholberg, K., & Seitenzahl, I. R., 2016: “Neutrinos from type Ia supernovae: The deflagration-to-detonation transition scenario”, Phys. Rev. D, 94(2)
2016
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Blagorodnova, N., Gezari, S., Hung, T., et al., 2017: “iPTF16fnl: A Faint and Fast Tidal Disruption Event in an E+A Galaxy”, ApJ, 844
2017
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Hung, T., Gezari, S., Blagorodnova, N., et al., 2017: “Revisiting Optical Tidal Disruption Events with iPTF16axa”, ApJ, 842
2017
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Jiang, Y.-F., Stone, J., & Davis, S. W., 2017: “Super-Eddington Accretion Disks around Supermassive black Holes”, ArXiv e-prints
2017
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Bogdanović, T., Cheng, R. M., & Amaro-Seoane, P., 2014: “Disruption of a Red Giant Star by a Supermassive Black Hole and the Case of PS1-10jh”, ApJ, 788
2014
Cited alongside, same era.
Jiang, Y.-F., Stone, J. M., & Davis, S. W., 2014: “A Global Three-dimensional Radiation Magneto-hydrodynamic Simulation of Super-Eddington Accretion Disks”, ApJ, 796
2014
Cited alongside, same era.
MacLeod, M., Goldstein, J., Ramirez-Ruiz, E., Guillochon, J., & Samsing, J., 2014: “Illuminating Massive Black Holes with White Dwarfs: Orbital Dynamics and High-energy Transients from Tidal Interactions”, ApJ, 794
2014
Cited alongside, same era.
Moran, E. C., Shahinyan, K., Sugarman, H. R., Vélez, D. O., & Eracleous, M., 2014: “Black Holes At the Centers of Nearby Dwarf Galaxies”, AJ, 148
2014
Cited alongside, same era.
Seitenzahl, I. R., Herzog, M., Ruiter, A. J., et al., 2015: “Neutrino and gravitational wave signal of a delayed-detonation model of type Ia supernovae”, Phys. Rev. D, 92(12)
2015
Cited alongside, same era.
Shiokawa, H., Krolik, J. H., Cheng, R. M., Piran, T., & Noble, S. C., 2015: “General Relativistic Hydrodynamic Simulation of Accretion Flow from a Stellar Tidal Disruption”, ApJ, 804
2015
Cited alongside, same era.
Baldassare, V. F., Reines, A. E., Gallo, E., et al., 2016: “Multi-epoch Spectroscopy of Dwarf Galaxies with AGN Signatures: Identifying Sources with Persistent Broad H α \alpha Emission”, ApJ, 829
2016
Cited alongside, same era.
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Stone, N. C., Küpper, A. H. W., & Ostriker, J. P., 2017: “Formation of massive black holes in galactic nuclei: runaway tidal encounters”, MNRAS, 467
2017
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Tamanini, N., 2017: “Late time cosmology with LISA: Probing the cosmic expansion with massive black hole binary mergers as standard sirens”. In Journal of Physics Conference Series
2017
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Wevers, T., van Velzen, S., Jonker, P. G., et al., 2017: “Black hole masses of tidal disruption event host galaxies”, MNRAS, 471
2017
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Anninos, P., Fragile, P. C., Olivier, S. S., et al., 2018: “Relativistic Tidal Disruption and Nuclear Ignition of White Dwarf Stars by Intermediate-mass Black Holes”, ApJ, 865
2018
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Dai, L., McKinney, J. C., Roth, N., Ramirez-Ruiz, E., & Miller, M. C., 2018: “A unified model for tidal disruption events”, The Astrophysical Journal
2018
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van Velzen, S., 2018: “On the Mass and Luminosity Functions of Tidal Disruption Flares: Rate Suppression due to Black Hole Event Horizons”, ApJ, 852
2018
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