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The extraordinary neutrino flux produced in extreme astrophysical environments like the early universe, core-collapse supernovae and neutron star mergers may produce coherent quantum neutrino oscillations on macroscopic length scales.
1901
Earlier work this paper cites.
1905
Earlier work this paper cites.
1909
Earlier work this paper cites.
1911
Earlier work this paper cites.
Jacques Yvon, La théorie statistique des fluides et l’équation d’état , Vol. 203 (Hermann & cie, 1935)
1935
Earlier work this paper cites.
Nikolai N Bogoliubov, “Kinetic equations,” Journal of Physics USSR 10
1946
Earlier work this paper cites.
M. Born and H. S. Green, “A General Kinetic Theory of Liquids. I. The Molecular Distribution Functions,” Proc. Roy. Soc. Lond. A 188
1946
Earlier work this paper cites.
John G Kirkwood, “The statistical mechanical theory of transport processes i. general theory,” The Journal of Chemical Physics 14
1946
Earlier work this paper cites.
H. A. Bethe, “Supernova mechanisms,” Rev. Mod. Phys. 62
1990
Earlier work this paper cites.
R. D. Hoffman, S. E. Woosley, and Y.‐Z. Qian, “Nucleosynthesis in neutrino‐driven winds. ii. implications for heavy element synthesis,” The Astrophysical Journal 482
1997
Earlier work this paper cites.
A. Osterloh, Luigi Amico, G. Falci, and Rosario Fazio, “Scaling of entanglement close to a quantum phase transition,” Nature 416
2002
Earlier work this paper cites.
Alexander Friedland and Cecilia Lunardini, “Do many-particle neutrino interactions cause a novel coherent effect?” Journal of High Energy Physics 2003
2003
Earlier work this paper cites.
G. Vidal, J. I. Latorre, E. Rico, and A. Kitaev, “Entanglement in quantum critical phenomena,” Phys. Rev. Lett. 90
2003
Earlier work this paper cites.
Nicole F. Bell, Andrew A. Rawlinson, and R. F. Sawyer, “Speedup through entanglement: Many body effects in neutrino processes,” Phys. Lett. B 573
2003
Earlier work this paper cites.
R.F. Sawyer, “’Classical’ instabilities and ’quantum’ speed-up in the evolution of neutrino clouds,” (2004), arXiv:hep-ph/0408265
2004
Earlier work this paper cites.
Stan Woosley and Thomas Janka, “The physics of core-collapse supernovae,” Nature Physics 1
2005
Earlier work this paper cites.
M. B. Plenio, J. Eisert, J. Dreißig, and M. Cramer, “Entropy, entanglement, and area: Analytical results for harmonic lattice systems,” Phys. Rev. Lett. 94
2005
Cited alongside, same era.
Alexander Friedland, Bruce H. J. McKellar, and Ivona Okuniewicz, “Construction and analysis of a simplified many-body neutrino model,” Phys. Rev. D 73
2006
Cited alongside, same era.
Hans-Thomas Janka, K. Langanke, A. Marek, G. Martinez-Pinedo, and B. Mueller, “Theory of Core-Collapse Supernovae,” Phys. Rept. 442
2007
Cited alongside, same era.
A.B. Balantekin and Y. Pehlivan, “Neutrino-Neutrino Interactions and Flavor Mixing in Dense Matter,” J. Phys. G 34
2007
Cited alongside, same era.
Huaiyu Duan, George M. Fuller, J. Carlson, and Yong-Zhong Qian, “Analysis of Collective Neutrino Flavor Transformation in Supernovae,” Phys. Rev. D 75
2007
2018
Later among the works it cites.
Amol V. Patwardhan, Michael J. Cervia, and A. Baha Balantekin, “Eigenvalues and eigenstates of the many-body collective neutrino oscillation problem,” Phys. Rev. D 99
2019
Later among the works it cites.
2019
Later among the works it cites.
Michael J. Cervia, Amol V. Patwardhan, A. B. Balantekin, S. N. Coppersmith, and Calvin W. Johnson, “Entanglement and collective flavor oscillations in a dense neutrino gas,” Phys. Rev. D 100
2019
Later among the works it cites.
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Cited alongside, same era.
Steen Hannestad, Georg G. Raffelt, Gunter Sigl, and Yvonne Y. Y. Wong, “Self-induced conversion in dense neutrino gases: Pendulum in flavour space,” Phys. Rev. D74
2007
Cited alongside, same era.
2008
Cited alongside, same era.
2008
Cited alongside, same era.
Y. Pehlivan, A. B. Balantekin, Toshitaka Kajino, and Takashi Yoshida, “Invariants of collective neutrino oscillations,” Phys. Rev. D 84
2011
Cited alongside, same era.
2011
Cited alongside, same era.
Cristina Volpe, Daavid Väänänen, and Catalina Espinoza, “Extended evolution equations for neutrino propagation in astrophysical and cosmological environments,” Phys. Rev. D 87
2013
Cited alongside, same era.
Ioannis Chatzigeorgiou, “Bounds on the lambert function and their application to the outage analysis of user cooperation,” IEEE Communications Letters 17
2013
Cited alongside, same era.
Ermal Rrapaj, “Exact solution of multiangle quantum many-body collective neutrino-flavor oscillations,” Phys. Rev. C 101
2020
Later among the works it cites.
Kai Xu, Zheng-Hang Sun, Wuxin Liu, Yu-Ran Zhang, Hekang Li, Hang Dong, Wenhui Ren, Pengfei Zhang, Franco Nori, Dongning Zheng, Heng Fan, and H. Wang, “Probing dynamical phase transitions with a superconducting quantum simulator,” Science Advances 6
2020
Later among the works it cites.
Pauli Virtanen, Ralf Gommers, Travis E. Oliphant, Matt Haberland, Tyler Reddy, David Cournapeau, Evgeni Burovski, Pearu Peterson, Warren Weckesser, Jonathan Bright, Stéfan J. van der Walt, Matthew Brett, Joshua Wilson, K. Jarrod Millman, Nikolay Mayorov, Andrew R. J. Nelson, Eric Jones, Robert Kern, Eric Larson, C J Carey, İlhan Polat, Yu Feng, Eric W. Moore, Jake VanderPlas, Denis Laxalde, Josef Perktold, Robert Cimrman, Ian Henriksen, E. A. Quintero, Charles R. Harris, Anne M. Archibald, Antônio H. Ribeiro, Fabian Pedregosa, Paul van Mulbregt, and SciPy 1.0 Contributors, “SciPy 1.0: Fundamental Algorithms for Scientific Computing in Python,” Nature Methods 17
2020
Later among the works it cites.
Meng-Ru Wu, Manu George, Chun-Yu Lin, and Zewei Xiong, “Collective fast neutrino flavor conversions in a 1d box: Initial conditions and long-term evolution,” Phys. Rev. D 104
2021
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C. Monroe, W. C. Campbell, L.-M. Duan, Z.-X. Gong, A. V. Gorshkov, P. W. Hess, R. Islam, K. Kim, N. M. Linke, G. Pagano, P. Richerme, C. Senko, and N. Y. Yao, “Programmable quantum simulations of spin systems with trapped ions,” Rev. Mod. Phys. 93
2021
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2021
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