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106 (2019)
28. B. Carter, Large Number Coincidences and the Anthropic Principle in Cosmology.
IAU Symposium 63: Confrontation of Cosmological Theories with Observational Data (Reidel, Dordrecht, 1974), pp. 291–298
29. Y. Chikashige, R.N. Mohapatra, R.D. Peccei, Are there real goldstone bosons
associated with broken lepton number? Phys. Lett. 98B, 265 (1981)
30. Z. Chacko, L.J. Hall, T. Okui, S.J. Oliver, CMB signals of neutrino mass
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33. R.H. Cyburt, B.D. Fields, K.A. Olive, T.H. Yeh, Big Bang nucleosynthesis: 2015.
Rev. Mod. Phys. 88, 015004 (2016) [arXiv:1505.01076 [astro-ph.CO]]
34. P. Davies,“The Last Three Minutes: Conjectures About the Ultimate Fate of the
Universe. (Basic Books, New York, 2008)
35. M. Dentler, Á. Hernández-Cabezudo, J. Kopp, P.A.N. Machado, M. Maltoni,
I. Martinez-Soler, T. Schwetz, Updated global analysis of neutrino oscillations in the presence of eV-scale sterile neutrinos. JHEP 1808, 010 (2018).
arXiv:1803.10661 [hep-ph]
36. F.F. Deppisch, P.S. Bhupal Dev, A. Pilaftsis, Neutrinos and collider physics. New
J. Phys. 17(7), 075019 (2015);
M. Drewes, Phenomenology of right handed neutrinos. Int. J. Mod. Phys. E 22,
1330019 (2013);
P. Fileviez Perez, T. Han, G. y. Huang, T. Li, K. Wang, Neutrino masses and the
CERN LHC: testing type II seesaw. Phys. Rev. D 78, 015018 (2008)
37. K. Dick, M. Lindner, M. Ratz, D. Wright, Leptogenesis with Dirac neutrinos.
Phys. Rev. Lett. 84, 4039 (2000);
H. Murayama, A. Pierce, Realistic Dirac leptogenesis. Phys. Rev. Lett. 89,
271601 (2002)
38. K.R. Dienes, E. Dudas, T. Gherghetta, Neutrino oscillations without neutrino
masses or heavy mass scales: a higher dimensional seesaw mechanism. Nucl.
Phys. B 557, 25 (1999);
N. Arkani-Hamed, S. Dimopoulos, G.R. Dvali, J. March-Russell, Neutrino
masses from large extra dimensions. Phys. Rev. D 65, 024032 (2001)
39. S. Dodelson, L.M. Widrow, Sterile-neutrinos as dark matter. Phys. Rev. Lett.
72, 17 (1994);
X.-D. Shi, G.M. Fuller, A new dark matter candidate: nonthermal sterile
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References
T. Schwetz, Global analysis of three-flavour neutrino oscillations: synergies and
tensions in the determination of θ 2 3, δ C P , and the mass ordering. JHEP 1901,
106 (2019)
28. B. Carter, Large Number Coincidences and the Anthropic Principle in Cosmology.
IAU Symposium 63: Confrontation of Cosmological Theories with Observational Data (Reidel, Dordrecht, 1974), pp. 291–298
29. Y. Chikashige, R.N. Mohapatra, R.D. Peccei, Are there real goldstone bosons
associated with broken lepton number? Phys. Lett. 98B, 265 (1981)
30. Z. Chacko, L.J. Hall, T. Okui, S.J. Oliver, CMB signals of neutrino mass
generation. Phys. Rev. D 70, 085008 (2004);
Z. Chacko, A. Dev, P. Du, V. Poulin, Y. Tsai, Cosmological limits on the neutrino
mass and lifetime (2019). arXiv:1909.05275 [hep-ph]
31. F. Close, The Infinity Puzzle (Basic Books, New York, 2011)
32. F. Close, Half-Life: Divided Life of Bruno Pontecorvo (Basic Books, New York,
2015)
33. R.H. Cyburt, B.D. Fields, K.A. Olive, T.H. Yeh, Big Bang nucleosynthesis: 2015.
Rev. Mod. Phys. 88, 015004 (2016) [arXiv:1505.01076 [astro-ph.CO]]
34. P. Davies,“The Last Three Minutes: Conjectures About the Ultimate Fate of the
Universe. (Basic Books, New York, 2008)
35. M. Dentler, Á. Hernández-Cabezudo, J. Kopp, P.A.N. Machado, M. Maltoni,
I. Martinez-Soler, T. Schwetz, Updated global analysis of neutrino oscillations in the presence of eV-scale sterile neutrinos. JHEP 1808, 010 (2018).
arXiv:1803.10661 [hep-ph]
36. F.F. Deppisch, P.S. Bhupal Dev, A. Pilaftsis, Neutrinos and collider physics. New
J. Phys. 17(7), 075019 (2015);
M. Drewes, Phenomenology of right handed neutrinos. Int. J. Mod. Phys. E 22,
1330019 (2013);
P. Fileviez Perez, T. Han, G. y. Huang, T. Li, K. Wang, Neutrino masses and the
CERN LHC: testing type II seesaw. Phys. Rev. D 78, 015018 (2008)
37. K. Dick, M. Lindner, M. Ratz, D. Wright, Leptogenesis with Dirac neutrinos.
Phys. Rev. Lett. 84, 4039 (2000);
H. Murayama, A. Pierce, Realistic Dirac leptogenesis. Phys. Rev. Lett. 89,
271601 (2002)
38. K.R. Dienes, E. Dudas, T. Gherghetta, Neutrino oscillations without neutrino
masses or heavy mass scales: a higher dimensional seesaw mechanism. Nucl.
Phys. B 557, 25 (1999);
N. Arkani-Hamed, S. Dimopoulos, G.R. Dvali, J. March-Russell, Neutrino
masses from large extra dimensions. Phys. Rev. D 65, 024032 (2001)
39. S. Dodelson, L.M. Widrow, Sterile-neutrinos as dark matter. Phys. Rev. Lett.
72, 17 (1994);
X.-D. Shi, G.M. Fuller, A new dark matter candidate: nonthermal sterile
neutrinos. Phys. Rev. Lett. 82, 2832 (1999)
