210
References
10. E. Aprile et al., XENON Collaboration, XENON1T dark matter data analysis: signal reconstruction, calibration and event selection. arXiv:1906.04717
[physics.ins-det]
11. APS News, Aug/Sept. 2019, vol. 8, p. 2
12. N. Arkani-Hamed, S. Dimopoulos, G. R. Dvali, The Hierarchy problem and
new dimensions at a millimeter. Phys. Lett. B 429, 263 (1998);
I. Antoniadis, N. Arkani-Hamed, S. Dimopoulos, G. R. Dvali, New dimensions
at a millimeter to a Fermi and superstrings at a TeV. Phys. Lett. B 436, 257
(1998);
L. Randall, R. Sundrum, A Large mass hierarchy from a small extra dimension.
Phys. Rev. Lett. 83, 3370 (1999)
13. A. Atre, T. Han, S. Pascoli, B. Zhang, The search for heavy Majorana neutrinos.
JHEP 0905, 030 (2009);
J.C. Helo, M. Hirsch, Z.S. Wang, Heavy neutral fermions at the high-luminosity
LHC. JHEP 1807, 056 (2018);
M. Chrzaszcz, M. Drewes, T.E. Gonzalo, J. Harz, S. Krishnamurthy, C.
Weniger, A frequentist analysis of three right-handed neutrinos with GAMBIT.
ArXiv: 1908.02302
14. R.L. Awasthi, M.K. Parida, S. Patra, Neutrinoless double beta decay and
pseudo-Dirac neutrino mass predictions through inverse seesaw mechanism.
arXiv:1301.4784 [hep-ph]; JHEP 1308, 122 (2013)
15. K.S. Babu, C.N. Leung, Classification of effective neutrino mass operators.
Nucl. Phys. B 619, 667 (2001);
A. de Gouvea, J. Jenkins, A survey of lepton number violation via effective
operators. Phys. Rev. D 77, 013008 (2008);
G. Anamiati, O. Castillo-Felisola, R.M. Fonseca, J.C. Helo, M. Hirsch, Highdimensional neutrino masses. JHEP 1812, 066 (2018);
Some models that apply these considerations to understand small neutrino
masses out of quantum effects are:
A. Zee, A theory of lepton number violation, neutrino Majorana mass, and
oscillation. Phys. Lett. 93B, 389 (1980). Erratum: [Phys. Lett. 95B, 461 (1980)];
K.S. Babu, Model of ‘Calculable’ Majorana neutrino masses. Phys. Lett. B 203,
132 (1988);
L.M. Krauss, S. Nasri, M. Trodden, A model for neutrino masses and dark
matter. Phys. Rev. D 67, 085002 (2003);
E. Ma, Verifiable radiative seesaw mechanism of neutrino mass and dark matter.
Phys. Rev. D 73, 077301 (2006);
K.S. Babu, S. Nandi, Z. Tavartkiladze, New mechanism for neutrino mass
generation and triply charged Higgs Bosons at the LHC. Phys. Rev. D 80,
071702 (2009)
References
10. E. Aprile et al., XENON Collaboration, XENON1T dark matter data analysis: signal reconstruction, calibration and event selection. arXiv:1906.04717
[physics.ins-det]
11. APS News, Aug/Sept. 2019, vol. 8, p. 2
12. N. Arkani-Hamed, S. Dimopoulos, G. R. Dvali, The Hierarchy problem and
new dimensions at a millimeter. Phys. Lett. B 429, 263 (1998);
I. Antoniadis, N. Arkani-Hamed, S. Dimopoulos, G. R. Dvali, New dimensions
at a millimeter to a Fermi and superstrings at a TeV. Phys. Lett. B 436, 257
(1998);
L. Randall, R. Sundrum, A Large mass hierarchy from a small extra dimension.
Phys. Rev. Lett. 83, 3370 (1999)
13. A. Atre, T. Han, S. Pascoli, B. Zhang, The search for heavy Majorana neutrinos.
JHEP 0905, 030 (2009);
J.C. Helo, M. Hirsch, Z.S. Wang, Heavy neutral fermions at the high-luminosity
LHC. JHEP 1807, 056 (2018);
M. Chrzaszcz, M. Drewes, T.E. Gonzalo, J. Harz, S. Krishnamurthy, C.
Weniger, A frequentist analysis of three right-handed neutrinos with GAMBIT.
ArXiv: 1908.02302
14. R.L. Awasthi, M.K. Parida, S. Patra, Neutrinoless double beta decay and
pseudo-Dirac neutrino mass predictions through inverse seesaw mechanism.
arXiv:1301.4784 [hep-ph]; JHEP 1308, 122 (2013)
15. K.S. Babu, C.N. Leung, Classification of effective neutrino mass operators.
Nucl. Phys. B 619, 667 (2001);
A. de Gouvea, J. Jenkins, A survey of lepton number violation via effective
operators. Phys. Rev. D 77, 013008 (2008);
G. Anamiati, O. Castillo-Felisola, R.M. Fonseca, J.C. Helo, M. Hirsch, Highdimensional neutrino masses. JHEP 1812, 066 (2018);
Some models that apply these considerations to understand small neutrino
masses out of quantum effects are:
A. Zee, A theory of lepton number violation, neutrino Majorana mass, and
oscillation. Phys. Lett. 93B, 389 (1980). Erratum: [Phys. Lett. 95B, 461 (1980)];
K.S. Babu, Model of ‘Calculable’ Majorana neutrino masses. Phys. Lett. B 203,
132 (1988);
L.M. Krauss, S. Nasri, M. Trodden, A model for neutrino masses and dark
matter. Phys. Rev. D 67, 085002 (2003);
E. Ma, Verifiable radiative seesaw mechanism of neutrino mass and dark matter.
Phys. Rev. D 73, 077301 (2006);
K.S. Babu, S. Nandi, Z. Tavartkiladze, New mechanism for neutrino mass
generation and triply charged Higgs Bosons at the LHC. Phys. Rev. D 80,
071702 (2009)
