Fundamental Neutrino Properties


References

References are divided in
  1 - Books

  2 - Reviews

  3 - Reviews - Conference Proceedings

  4 - Fundamental Papers - Experiment

  5 - Fundamental Papers - Theory

  6 - Fundamental Papers - Theory - Two-Component Theory of Massless Neutrinos

  7 - Fundamental Papers - Theory - Nature - Majorana

  8 - Fundamental Papers - Phenomenology

  9 - Experiment

  10 - Experiment - Conference Proceedings

  11 - Experiment - Neutrino Velocity

  12 - Experiment - Number of Neutrino Species

  13 - Theory

  14 - Theory - Conference Proceedings

  15 - Theory - Nature

  16 - Theory - Nature - Majorana

  17 - Theory - Nature - Majorana - Conference Proceedings

  18 - Theory - Nature - Dirac

  19 - Theory - Mixing

  20 - Theory - Interactions

  21 - Theory - Gravitational Effects

  22 - Theory - Alternative Models

  23 - Theory - Tachyons

  24 - Theory - Tachyons - Conference Proceedings

  25 - Phenomenology

  26 - Phenomenology - Conference Proceedings

  27 - Phenomenology - Nature - Majorana

  28 - Phenomenology - Nature - Majorana - Conference Proceedings

  29 - Phenomenology - Nature - Pseudo-Dirac

  30 - Phenomenology - Nature - Pseudo-Dirac - Conference Proceedings

  31 - Phenomenology - Number of Neutrino Species

  32 - Phenomenology - Mixing - Conference Proceedings

  33 - History

The references in each group are listed in approximate inverted chronological order.
Click on the reference label to search it in Spires.


1 - Books

[1-1]
Neutrinos in particle physics, astronomy and cosmology, Xing, Zhi-zhong, Zhou, Shun, Zhejiang University Press, 2011. ISBN 978-7-308-08024-8. http://www.zjupress.com/en/redir.php?catalog_id=64&book_id=1446.
[1-2]
Neutrino, Frank Close, Oxford University Press, 2010. http://ukcatalogue.oup.com/product/9780199574599.do?keyword=close+neutrino&sortby=bestMatches.
[1-3]
Introduction to the physics of massive and mixed neutrinos, Bilenky, Samoil, Springer, 2010. Lecture Notes in Physics, Volume 817; ISBN 978-3-642-14042-6. http://www.springer.com/physics/book/978-3-642-14042-6.
[1-4]
Beta Beams, M. Lindroos, M. Mezzetto, World Scientific, 2009. http://www.worldscibooks.com/physics/p635.html.
[1-5]
Fundamentals of Neutrino Physics and Astrophysics, C. Giunti, C. W. Kim, Oxford University Press, Oxford, UK, 2007. ISBN 978-0-19-850871-7. http://www.oup.com/uk/catalogue/?ci=9780198508717.
[1-6]
Focus on Neutrino Physics, Halzen,F. et al., 2004. New Journal of Physics, 6 (2004). http://www.iop.org/EJ/abstract/1367-2630/6/1/E02/.
[1-7]
Neutrino, La particella fantasma, Lino Miramonti, Franco Reseghetti, Franco Muzzio editore, 2004. In Italian. http://www.internetbookshop.it/ser/serdsp.asp?shop=1506&c=RNO9XASKPNPKI.
[1-8]
Massive Neutrinos in Physics and Astrophysics, Mohapatra, R. N., Pal, P. B., World Scientific, 2004. Third Edition, Lecture Notes in Physics, Vol. 72. http://www.worldscientific.com/books/physics/5024.html.
[1-9]
Physics of neutrinos and applications to astrophysics, Fukugita, M., Yanagida, T., Springer, 2003. http://www.springeronline.com/sgw/cda/frontpage/0,11855,5-10100-22-2258836-0,00.html.
[1-10]
Unification and Supersymmetry. The Frontiers of Quark-Lepton Physics, Mohapatra, R. N., Springer, 2003. Series: Graduate Texts in Contemporary Physics, 3rd edition. http://www.springer.com/east/home/generic/search/results?SGWID=5-40109-22-1328433-0.
[1-11]
Neutrino Physics, Zuber, K., Institute of Physics Publishing, 2003. Series in High Energy Physics. http://www.crcpress.com/product/isbn/9780750307505.
[1-12]
Particle Astrophysics, Klapdor, H.V., Zuber, K., Institute of Physics Publishing, 2003. Series in High Energy Physics. http://bookmarkphysics.iop.org/bookpge.htm?ID=25vsIjRfMSoNQj04iH14KgTg&book=388.
[1-13]
Current aspects of neutrino physics, Caldwell, D. O., (ed.), Springer, 2001.
[1-14]
Massive Neutrinos in Physics and Astrophysics, Mohapatra, R. N., Pal, P. B., World Scientific, 1998. Lecture Notes in Physics, Vol. 60.
[1-15]
La lumiere des neutrinos, Cribier Michel, Spiro Michel, Vignaud Daniel, Editions du Seuil, 1995. In French.
[1-16]
Physics and astrophysics of neutrinos, Fukugita, M., (ed.), Suzuki, A., (ed.), Springer, 1994.
[1-17]
Neutrinos in Physics and Astrophysics, C. W. Kim, A. Pevsner, Harwood Academic Press, 1993. Contemporary Concepts in Physics, Vol. 8.
[1-18]
Physics of massive neutrinos, Boehm, F., Vogel, P., Cambridge University Press, 1992.
[1-19]
Neutrino physics, Winter, K., (ed.), Cambridge University Press, 1991.
[1-20]
Neutrinos and other matters: Selected works of Frederick Reines, Kropp, W. R., (ed.), Moe, M., (ed.), Price, L., (ed.), Schultz, J., (ed.), Sobel, H., (ed.), World Scientific, 1991.
[1-21]
Cosmic Rays and Particle Physics, Gaisser, T. K., Cambridge University Press, 1990.
[1-22]
The Physics of massive neutrinos, Kayser, B., Gibrat-Debu, F., Perrier, F., World Sci. Lect. Notes Phys. 25 (1989) 1-117.
[1-23]
Neutrino Astrophysics, Bahcall, J. N., Cambridge University Press, 1989.


2 - Reviews

[2-1]
On Invariants of Quark and Lepton Mass Matrices in the Standard Model, Cecilia Jarlskog, arXiv:1102.2823, 2011.
[2-2]
Dirac, Majorana and Weyl fermions, Palash B. Pal, arXiv:1006.1718, 2010.
[2-3]
A direct road to Majorana fields, Aste, Andreas, Symmetry 2 (2010) 1776-1809, arXiv:0806.1690.
[2-4]
Neutrino masses and mixings and..., Alessandro Strumia, Francesco Vissani, arXiv:hep-ph/0606054, 2006.
From the article: One possible global explanation of the three anomalies (solar - atmospheric - LSND) is that an extra sterile neutrino generates one of them.... The relatively better global fit (see table 9.1) is obtained with a 3+1 spectrum (sterile LSND oscillations).
[2-5]
Neutrino Majorana, S.M. Bilenky, arXiv:hep-ph/0605172, 2006.
[2-6]
Majorana neutrino mixing, Bilenky, S. M., J. Phys. G32 (2006) R127, arXiv:hep-ph/0511227.
[2-7]
Theory of Neutrinos: A White Paper, R.N. Mohapatra et al., Rept. Prog. Phys. 70 (2007) 1757-1867, arXiv:hep-ph/0510213.
[2-8]
Neutrino Mass, Mixing, and Flavor Change, Kayser, B., Phys. Lett. B592 (2004). The Review of Particle Properties 2004. http://pdg.lbl.gov/2005/reviews/numixrpp.pdf.
[2-9]
Neutrinos: A brief review, Bilenky, S. M., Mod. Phys. Lett. A19 (2004) 2451-2477.
[2-10]
Neutrino Mixing, C. Giunti, M. Laveder, arXiv:hep-ph/0310238, 2003. In "Developments in Quantum Physics - 2004", p. 197-254, edited by F. Columbus and V. Krasnoholovets, Nova Science, Hauppauge, NY. http://novapublishers.com/catalog/product_info.php?products_id=1633.
[2-11]
Flavor Mixing and CP Violation of Massive Neutrinos, Xing, Z.-Z., Int. J. Mod. Phys. A19 (2004) 1, arXiv:hep-ph/0307359.
[2-12]
Absolute values of neutrino masses: Status and prospects, Bilenky, S. M., Giunti, C., Grifols, J. A., Masso, E., Phys. Rep. 379 (2003) 69-148, arXiv:hep-ph/0211462.
[2-13]
Neutrinos in cosmology, Dolgov, A. D., Phys. Rep. 370 (2002) 333-535, arXiv:hep-ph/0202122.
[2-14]
Neutrino Masses and Mixing: Evidence and Implications, M.C. Gonzalez-Garcia, Y. Nir, Rev. Mod. Phys. 75 (2003) 345-402, arXiv:hep-ph/0202058.
[2-15]
Neutrino Physics as Explored by Flavor Change, Kayser, B., Phys. Rev. D66 (2002) 010001. The Review of Particle Properties 2002. http://pdg.lbl.gov/2002/neutrino_mixing_s805.pdf.
[2-16]
Lepton numbers in the framework of neutrino mixing, Bilenky, S. M., Giunti, C., Int. J. Mod. Phys. A16 (2001) 3931-3949, arXiv:hep-ph/0102320.
[2-17]
Finally neutrino has mass?, Bilenky, S. M., Giunti, C., Kim, C. W., Int. J. Mod. Phys. A15 (2000) 625-650, arXiv:hep-ph/9902462.
[2-18]
Phenomenology of neutrino oscillations, S. M. Bilenky, C. Giunti, W. Grimus, Prog. Part. Nucl. Phys. 43 (1999) 1, arXiv:hep-ph/9812360.
[2-19]
Electric charge quantization, Foot, Robert, Lew, H., Volkas, R. R., J. Phys. G19 (1993) 361-372, arXiv:hep-ph/9209259.
[2-20]
Gauge theories and the physics of neutrino mass, Valle, J. W. F., Prog. Part. Nucl. Phys. 26 (1991) 91-171.
[2-21]
The number of neutrino species, Denegri, D., Sadoulet, B., Spiro, M., Rev. Mod. Phys. 62 (1990) 1.


3 - Reviews - Conference Proceedings

[3-1]
Neutrino physics, P. Hernandez, (2010), arXiv:1010.4131. 5th CERN-Latin-American School of High-Energy Physics, Recinto Quirama, Colombia, 15 - 28 Mar 2009.
[3-2]
Are neutrinos their own antiparticles?, Kayser, Boris, J. Phys. Conf. Ser. 173 (2009) 012013, arXiv:0903.0899. Carolina International Symposium on Neutrino Physics.
[3-3]
Neutrino Oscillation Phenomenology, Kayser, Boris, arXiv:0804.1121, 2008.
[3-4]
Are Neutrinos Majorana Particles?, G. Rajasekaran, arXiv:0803.4387, 2008. Workshop on Neutrinoless Double Beta Decay (NDBD07) at Tata Institute of Fundamental Research, Mumbai, October 2007.
[3-5]
Neutrino Intrinsic Properties: The Neutrino-Antineutrino Relation, Boris Kayser, Phys. Scripta T121 (2005) 156, arXiv:hep-ph/0504052. Nobel Symposium on Neutrino Physics. http://www.physics.kth.se/nobel2004/talks/B_Kayser-Neutrino_intrinsic_properties.pdf.


4 - Fundamental Papers - Experiment

[4-1]
Observation of high-energy neutrino reactions and the existence of two kinds of neutrinos, Danby, G. et al., Phys. Rev. Lett. 9 (1962) 36-44.
[4-2]
Detection of the free anti-neutrino, Reines, F., Cowan, C. L., Harrison, F. B., McGuire, A. D., Kruse, H. W., Phys. Rev. 117 (1960) 159-173.
[4-3]
Helicity of neutrinos, Goldhaber, M., Grodzins, L., Sunyar, A. W., Phys. Rev. 109 (1958) 1015-1017.
[4-4]
Detection of the free neutrino, Reines, F., Cowan, C. L., Phys. Rev. 92 (1953) 830-831.
[4-5]
A Proposed experiment to detect the free neutrino, Reines, F., Cowan, C. L., Phys. Rev. 90 (1953) 492-493.


5 - Fundamental Papers - Theory

[5-1]
On the Mikheev-Smirnov-Wolfenstein (MSW) mechanism of amplification of neutrino oscillations in matter, P. Langacker, S. T. Petcov, G. Steigman, S. Toshev, Nucl. Phys. B282 (1987) 589.
Comment: It is shown that the Dirac or Majorana nature of neutrinos cannot be distinguished in neutrino oscillations in matter, as well as in vacuum, because neutrino oscillations do not depend on the Majorana phases. [C.G.].
[5-2]
The phenomenology of neutrino oscillations, Kobzarev, I. Yu., Martemyanov, B. V., Okun, L. B., Shchepkin, M. G., Sov. J. Nucl. Phys. 32 (1980) 823.
[5-3]
Selection Rules for the \beta-Disintegration, G. Gamow, E. Teller, Phys. Rev. 49 (1936) 895-899.
[5-4]
An attempt of a theory of beta radiation. 1, Fermi, E., Z. Phys. 88 (1934) 161-177.
[5-5]
Trends to a theory of beta radiation, Fermi, E., Nuovo Cim. 11 (1934) 1-19. In italian.


6 - Fundamental Papers - Theory - Two-Component Theory of Massless Neutrinos

[6-1]
On parity conservation and neutrino mass, A. Salam, Nuovo Cim. 5 (1957) 299.
[6-2]
Parity nonconservation and a two component theory of the neutrino, T. D. Lee, C. N. Yang, Phys. Rev. 105 (1957) 1671.
[6-3]
On the conservation laws for weak interactions, L. Landau, Nucl. Phys. 3 (1957) 127.


7 - Fundamental Papers - Theory - Nature - Majorana

[7-1]
CPT, CP, and C phases and their effects in Majorana particle processes, Kayser, Boris, Phys. Rev. D30 (1984) 1023.
[7-2]
Can the neutrinoless double beta decay take place in the case of Dirac neutrinos?, Takasugi, Eiichi, Phys. Lett. B149 (1984) 372.
[7-3]
Some implications of the CP invariance for mixing of Majorana neutrinos, Bilenky, S. M., Nedelcheva, N. P., Petcov, S. T., Nucl. Phys. B247 (1984) 61.
[7-4]
Neutrinoless double-beta decay in SU(2) x U(1) theories, Schechter, J., Valle, J. W. F., Phys. Rev. D25 (1982) 2951.
[7-5]
CP violation in Majorana neutrinos, M. Doi, T. Kotani, H. Nishiura, K. Okuda, E. Takasugi, Phys. Lett. B102 (1981) 323.
Comment: It is shown that the Dirac or Majorana nature of neutrinos cannot be distinguished in neutrino oscillations in vacuum, because neutrino oscillations in vacuum do not depend on the Majorana phases. [C.G.].
[7-6]
Neutrino oscillation thought experiment, Schechter, J., Valle, J. W. F., Phys. Rev. D23 (1981) 1666.
[7-7]
CP properties of Majorana neutrinos and double beta decay, Wolfenstein, Lincoln, Phys. Lett. B107 (1981) 77.
[7-8]
Neutrino masses in SU(2) x U(1) theories, Schechter, J., Valle, J. W. F., Phys. Rev. D22 (1980) 2227.
[7-9]
On oscillations of neutrinos with Dirac and Majorana masses, S. M. Bilenky, J. Hosek, S. T. Petcov, Phys. Lett. B94 (1980) 495.
Comment: It is shown that the Dirac or Majorana nature of neutrinos cannot be distinguished in neutrino oscillations in vacuum, because neutrino oscillations in vacuum do not depend on the Majorana phases. [C.G.].
[7-10]
Reformulation of the Majorana Theory of the Neutrino, Case, K. M., Phys. Rev. 107 (1957) 307-316.
[7-11]
Parity Nonconservation and the Theory of the Neutrino, Mclennan, J. A., Phys. Rev. 106 (1957) 821-822.
[7-12]
On transition probabilities in double beta-disintegration, W.H. Furry, Phys. Rev. 56 (1939) 1184-1193.
[7-13]
On the symmetry of particle and antiparticle, Racah, G., Nuovo Cim. 14 (1937) 322-328.
[7-14]
Teoria simmetrica dell'elettrone e del positrone, Majorana, Ettore, Nuovo Cim. 14 (1937) 171-184. In Italian. http://people.na.infn.it/~sesposit/MajoranaSite/documents/EMP9.pdf.


8 - Fundamental Papers - Phenomenology

[8-1]
Feasibility of using high-energy neutrinos to study the weak interactions, Schwartz, M., Phys. Rev. Lett. 4 (1960) 306-307.
[8-2]
Electron and muon neutrinos, Pontecorvo, B., Sov. Phys. JETP 10 (1960) 1236-1240.


9 - Experiment

[9-1]
Searches for Majorana neutrinos in B^- decays, R. Aaij et al. (LHCb), arXiv:1201.5600, 2012.
[9-2]
A Search for Excited Neutrinos in e-p Collisions at HERA, H1 (H1), Phys. Lett. B663 (2008) 382-389, arXiv:0802.1858.


10 - Experiment - Conference Proceedings

[10-1]
Search for Heavy Neutrino in K->mu nu_h(nu_h-> nu gamma) Decay at ISTRA+ Setup, ISTRA+ collaboration et al. (ISTRA+), arXiv:1110.1610, 2011. QFTHEP-2011.
[10-2]
Excited Fermions at H1, E. Sauvan (H1), J. Phys. Conf. Ser. 110 (2008) 072037, arXiv:0709.0673. 2007 Europhysics Conference on High Energy Physics, Manchester, England, 19-25 July 2007.


11 - Experiment - Neutrino Velocity

[11-1]
A search for the analogue to Cherenkov radiation by high energy neutrinos at superluminal speeds in ICARUS, M. Antonello et al. (ICARUS), arXiv:1110.3763, 2011.
[11-2]
Measurement of the neutrino velocity with the OPERA detector in the CNGS beam, OPERA (OPERA), arXiv:1109.4897, 2011.
[11-3]
Measurement of neutrino velocity with the MINOS detectors and NuMI neutrino beam, P. Adamson et al. (MINOS), Phys. Rev. D76 (2007) 072005, arXiv:0706.0437.


12 - Experiment - Number of Neutrino Species

[12-1]
Precision electroweak measurements on the Z resonance, S. Schael et al. (ALEPH, DELPHI, L3, OPAL, SLD, LEP Electroweak Working Group, SLD Electroweak Group, SLD Heavy Flavour Group), Phys. Rept. 427 (2006) 257, arXiv:hep-ex/0509008.
From the abstract: The number of light neutrino species is determined to be  2.9840 +- 0.0082 .
[12-2]
Intermediate vector boson cross-sections at the CERN Super Proton Synchrotron collider and the number of neutrino types, Albajar, C. et al. (UA1), Phys. Lett. B198 (1987) 271.


13 - Theory

[13-1]
Can gravity distinguish between Dirac and Majorana Neutrinos?, S. A. Alavi, A. Abbasnezhad, arXiv:1201.4741, 2012.
[13-2]
Canonical quantization of a massive Weyl field, Maxim Dvornikov, arXiv:1106.3303, 2011.
[13-3]
Rephasing Invariants of Quark and Lepton Mixing Matrices, Elizabeth Jenkins, Aneesh V. Manohar, Nucl. Phys. B792 (2008) 187-205, arXiv:0706.4313.
[13-4]
Representation-independent manipulations with Dirac spinors, Palash B. Pal, arXiv:physics/0703214, 2007.
[13-5]
A teleparallel model for the neutrino, Dmitri Vassiliev, Phys. Rev. D75 (2007) 025006, arXiv:gr-qc/0604011.
[13-6]
Electromagnetic properties and decays of Dirac and Majorana neutrinos in a general class of gauge theories, Shrock, Robert E., Nucl. Phys. B206 (1982) 359.
[13-7]
Neutrino decay and spontaneous violation of lepton number, Schechter, J., Valle, J. W. F., Phys. Rev. D25 (1982) 774.
[13-8]
Majorana Neutrinos and Magnetic Fields, Schechter, J., Valle, J. W. F., Phys. Rev. D24 (1981) 1883-1889.
[13-9]
Neutrino masses, mixings and oscillations in SU(2) x U(1) models of electroweak interactions, Cheng, T. P., Li, Ling-Fong, Phys. Rev. D22 (1980) 2860.
[13-10]
Parity violation and the masslessness of the neutrino, Mannheim, Philip D., Phys. Lett. B85 (1979) 253.


14 - Theory - Conference Proceedings


15 - Theory - Nature

[15-1]
Probing the quantum nature of the neutrino with two-particle interferometry, Thomas D. Gutierrez, arXiv:nucl-th/0510069, 2005.
[15-2]
Majorana zero modes, Jeannerot, Rachel, Postma, Marieke, JHEP 0412 (2004) 032, arXiv:hep-ph/0411259.
[15-3]
A comment on the possibility of distinguishing between Dirac and Majorana neutrinos in \nu_\mu - e scattering, Barr, Stephen M., Halprin, A., Phys. Lett. B202 (1988) 279.


16 - Theory - Nature - Majorana

[16-1]
Majorana neutrino oscillations in vacuum, Y. F. Perez, C. J. Quimbay, arXiv:1103.2781, 2011.
[16-2]
Majoranized Feynman rules, R. Kleiss, I. Malamos, G. v.d. Oord, Eur. Phys. J. C64 (2009) 387-389, arXiv:0906.3388.
[16-3]
The Physical Range of Majorana Neutrino Mixing Parameters, de Gouvea, Andre, Jenkins, James, Phys. Rev. D78 (2008) 053003, arXiv:0804.3627.
[16-4]
From transition magnetic moments to majorana neutrino masses, Davidson, Sacha, Gorbahn, Martin, Santamaria, Arcadi, Phys. Lett. B626 (2005) 151, arXiv:hep-ph/0506085.
[16-5]
Beta decays with momentum space Majorana spinors, M. Kirchbach, C. Compean, L. Noriega, Eur. Phys. J. A22 (2004) 149, arXiv:hep-ph/0411316.
[16-6]
Neutral Fermion Phenomenology With Majorana Spinors, M. Kirchbach, C. Compean, L. Noriega, arXiv:hep-ph/0310297, 2003.
[16-7]
Extended set of Majorana spinors, a new dispersion relation, and a preferred frame, D. V. Ahluwalia-Khalilova, arXiv:hep-ph/0305336, 2003.
[16-8]
Manifest CP Violation from Majorana Phases, A. de Gouvea, B. Kayser, R. Mohapatra, Phys. Rev. D67 (2003) 053004, arXiv:hep-ph/0211394.
[16-9]
CP-violating Majorana phases, lepton-conserving processes and final state interactions, Nieves, Jose F., Pal, Palash B., Phys. Rev. D67 (2003) 036005, arXiv:hep-ph/0210232.
[16-10]
Rephasing-invariant CP violating parameters with Majorana neutrinos, Nieves, Jose F., Pal, Palash B., Phys. Rev. D64 (2001) 076005, arXiv:hep-ph/0105305.
[16-11]
Unitarity triangles and geometrical description of CP violation with Majorana neutrinos, Aguilar-Saavedra, J. A., Branco, G. C., Phys. Rev. D62 (2000) 096009, arXiv:hep-ph/0007025.
[16-12]
Neutrino anti-neutrino transitions, Langacker, Paul, Wang, Jing, Phys. Rev. D58 (1998) 093004, arXiv:hep-ph/9802383.
[16-13]
CP violation in the lepton sector and Majorana neutrinos, J.K. Koh, C. Giunti, C.W. Kim, Journal of the Korean Physical Society 24 (1991) 275. http://www.nu.to.infn.it/slides/1991/Koh-Giunti-Kim-JKPS24-275-1991.pdf.
[16-14]
Quantization of electric charge from anomaly constraints and a Majorana neutrino, Babu, K. S., Mohapatra, Rabindra N., Phys. Rev. D41 (1990) 271.
[16-15]
Minimal rephasing invariant CP violating parameters with Dirac and Majorana fermions, Nieves, Jose F., Pal, Palash B., Phys. Rev. D36 (1987) 315.
[16-16]
CP properties of the leptonic sector for Majorana neutrinos, Bernabeu, J., Pascual, P., Nucl. Phys. B228 (1983) 21.
[16-17]
Majorana Neutrinos and their Electromagnetic Properties, Kayser, Boris, Phys. Rev. D26 (1982) 1662.
[16-18]
Physical processes involving Majorana neutrinos, Li, L. F., Wilczek, Frank, Phys. Rev. D25 (1982) 143.
[16-19]
Electromagnetic properties of Majorana neutrinos, Nieves, Jose F., Phys. Rev. D26 (1982) 3152.


17 - Theory - Nature - Majorana - Conference Proceedings

[17-1]
Two Questions About Neutrinos, Boris Kayser, arXiv:1012.4469, 2010. 22nd Rencontres de Blois.
[17-2]
Evidence for Majorana Neutrinos: Dawn of a new era in spacetime structure, D. V. Ahluwalia, arXiv:hep-ph/0212222, 2002. Beyond the Desert '02, June, 2002, Oulu, Finland.


18 - Theory - Nature - Dirac


19 - Theory - Mixing

[19-1]
A full parametrization of the 6 X 6 flavor mixing matrix in the presence of three light or heavy sterile neutrinos, Zhi-zhong Xing, Phys. Rev. D85 (2012) 013008, arXiv:1110.0083.
[19-2]
Dependence of Neutrino Mixing Angles and CP-violating Phase on Mixing Matrix Parametrizations, Huang, Melin, Liu, Dawei, Peng, Jen-Chieh, Reitzner, S.D., Tsai, Wei-Chun, arXiv:1108.3906, 2011.
[19-3]
Symmetrical Parametrizations of the Lepton Mixing Matrix, W. Rodejohann, J. W. F. Valle, Phys. Rev. D84 (2011) 073011, arXiv:1108.3484.
[19-4]
Parametrization of fermion mixing matrices in Kobayashi-Maskawa form, Nan Qin, Bo-Qiang Ma, Phys. Rev. D83 (2011) 033006, arXiv:1101.4729.
[19-5]
New Parametrization of Neutrino Mixing Matrix, H.B. Benaoum, Mod. Phys. Lett. A26 (2011) 423-431, arXiv:1011.0666.
[19-6]
Plaquette Invariants and the Flavour Symmetric Description of Quark and Neutrino Mixings, P.F. Harrison, D.R.J. Roythorne, W.G. Scott, Phys. Lett. B657 (2007) 210-216, arXiv:0709.1439.
[19-7]
Real Invariant Matrices and Flavour-Symmetric Mixing Variables with Emphasis on Neutrino Oscillations, P. F. Harrison, W. G. Scott, T. J. Weiler, Phys. Lett. B641 (2006) 372-380, arXiv:hep-ph/0607335.
[19-8]
A recursive parameterisation of unitary matrices, C. Jarlskog, J. Math. Phys. 46 (2005) 103508, arXiv:math-ph/0504049.


20 - Theory - Interactions

[20-1]
Neutrino spin evolution in presence of general external fields, Dvornikov, M., Studenikin, A., JHEP 09 (2002) 016, arXiv:hep-ph/0202113.


21 - Theory - Gravitational Effects

[21-1]
'Evaporation' of a flavor-mixed particle from a gravitational potential, Mikhail V. Medvedev, arXiv:1201.5697, 2012.
[21-2]
Neutrino spin and chiral dynamics in gravitational fields, Singh, Dinesh, arXiv:gr-qc/0401044, 2004.


22 - Theory - Alternative Models

[22-1]
Fermions and discrete symmetries in Quantum Field Theory. I. Generalities and the propagator for one flavor, Duret, Quentin, Machet, Bruno, Annals Phys. 325 (2010) 2041-2074, arXiv:0809.0431.
[22-2]
Mixing angles of quarks and leptons in Quantum Field Theory, Quentin Duret, Bruno Machet, M. I. Vysotsky, Eur. Phys. J. C61 (2009) 247-278, arXiv:0805.4121.
[22-3]
The neighborhood of the Standard Model: mixing angles and quark-lepton complementarity for three generations of non-degenerate coupled fermions, Quentin Duret, Bruno Machet, arXiv:0705.1237, 2007.
[22-4]
Mixing Angles and Non-Degenerate Systems of Particles, Duret, Quentin, Machet, Bruno, Phys. Lett. B643 (2006) 303-310, arXiv:hep-ph/0606303.


23 - Theory - Tachyons

[23-1]
Tachyonic Dirac sea, Ernst Trojan, arXiv:1201.6560, 2012.
[23-2]
Dirac Equation with Imaginary Mass and Helicity-Dependence, U. D. Jentschura, arXiv:1201.6300, 2012.
[23-3]
Localizability of Tachyonic Particles and Neutrinoless Double Beta Decay, U. D. Jentschura, B. J. Wundt, arXiv:1201.0359, 2012.
[23-4]
Symmetries of the Tachyonic Dirac Equation, U. D. Jentschura, B. J. Wundt, arXiv:1110.4171, 2011.
[23-5]
Stability of the scalar and neutrino tachyons in the rotating and expanding Universe, R. A. Konoplya, A. Zhidenko, arXiv:1110.2015, 2011.
[23-6]
Acceleration of the Universe in Presence of Tachyonic field, Chattopadhyay, Surajit, Debnath, Ujjal, Chattopadhyay, Goutami, Astrophys. Space Sci. 314 (2008) 41-44, arXiv:0712.3107.
[23-7]
About Superluminal motions and Special Relativity: A Discussion of some recent Experiments, and the solution of the Causal Paradoxes, Erasmo Recami, Flavio Fontana, Roberto Garavaglia, arXiv:0709.2453, 2007.
[23-8]
Exact solutions of tachyon scalar field: dark energy and supernovae constraints, Jie Ren, Xin-He Meng, Int. J. Mod. Phys. D17 (2008) 2325-2335, arXiv:astro-ph/0610266.
[23-9]
Two knees and the Evasion of Greisen-Zatsepin-Kuz'min Cutoff in Cosmic Ray Spectrum - Are Neutrinos the Tachyons?, Ni, Guang-Jiong, Shi, Zhi-Qiang, arXiv:hep-ph/0605058, 2006.
[23-10]
The Equation of State of an Interacting Tachyon, Alberghi, G. L., Tronconi, A., arXiv:hep-ph/0509044, 2005.
[23-11]
Cosmology with decaying tachyon matter, Das, A., Gupta, Shashikant, Saini, Tarun Deep, Kar, Sayan, Phys. Rev. D72 (2005) 043528, arXiv:astro-ph/0505509.
[23-12]
Tachyon driven solution to Cosmic Coincidence Problrm, Srivastaca, S. K., arXiv:gr-qc/0411088, 2004.
[23-13]
Tritium beta-decay endpoint for a Tachyonic Neutrino that travels Faster than Light, Ngee-Pong Chang, arXiv:hep-ph/0410175, 2004.
[23-14]
Causal paradoxes: a conflict between relativity and the arrow of time, H. Nikolic, Found. Phys. Lett. 19 (2006) 259, arXiv:gr-qc/0403121.
[23-15]
Can We Detect Tachyons Now?, J.K. Kowalczynski, Acta Phys. Polon. B31 (2000) 523, arXiv:hep-ex/0305008.
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Faster-than-light speeds, tachyons, and the possibility of tachyonic neutrinos, Ehrlich, R., Am. J. Phys. 71 (2003) 1109-1114.
[23-17]
Spread theory of the special theory of relativity, Wu, X. Y., Yin, Xin-guo, Guo, Yi-Qing, Wang, Xin-Song, arXiv:hep-ph/0212368, 2002.
[23-18]
Faster-than-c signals, special relativity, and causality, Liberati, Stefano, Sonego, Sebastiano, Visser, Matt, Annals Phys. 298 (2002) 167-185, arXiv:gr-qc/0107091.
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Neutrino <b>Mass</b>^2 Inferred from the Cosmic Ray Spectrum and Tritium Beta Decay, Ehrlich, Robert, Phys. Lett. B493 (2000) 229-232, arXiv:hep-ph/0009040.
[23-20]
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The Tolman 'antitelephone' paradox: Its solution by tachyon mechanics, Recami, Erasmo, Lett.Nuovo Cim. 44 (1985) 587-593, arXiv:hep-th/9508164. Reprinted in Electr.J.Theor.Phys. 6(21),1-8,2009.
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Tachyon mechanics and tachyon gravitational interaction, Recami, E., Giannetto, E., Lett.Nuovo Cim. 43 (1985) 267-273.
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Tachyons: May they have a role in elementary particle physics?, Recami, Erasmo, Rodrigues, Waldyr A., Jr., Prog.Part.Nucl.Phys. 15 (1985) 499-517.
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Are classical tachyons slower than light quantum particles?, Recami, E., Maccarrone, G.D., Lett.Nuovo Cim. 37 (1983) 345.


24 - Theory - Tachyons - Conference Proceedings

[24-1]
A quantum field model for tachyonic neutrinos with Lorentz symmetry breaking, Marek J. Radzikowski, arXiv:1007.5418, 2010. Fifth Meeting on CPT and Lorentz Symmetry, Bloomington, Indiana, June 28-July 2, 2010.


25 - Phenomenology

[25-1]
Multi-Lepton Collider Signatures of Heavy Dirac and Majorana Neutrinos, Chien-Yi Chen, P. S. Bhupal Dev, arXiv:1112.6419, 2011.
[25-2]
Extended Empirical Fermion Mass Relation, Werner Rodejohann, He Zhang, Phys. Lett. B698 (2011) 152-156, arXiv:1101.5525.
[25-3]
Tevatron Discovery Potential for Fourth Generation Neutrinos: Dirac, Majorana and Everything in Between, A. Rajaraman, D. Whiteson, Phys. Rev. D82 (2010) 051702, arXiv:1005.4407.
[25-4]
Unified Parametrization for Quark and Lepton Mixing Angles, Rodejohann, Werner, Phys. Lett. B671 (2009) 267-271, arXiv:0810.5239.
[25-5]
Sterile Neutrinos in Light of Recent Cosmological and Oscillation Data: a Multi-Flavor Scheme Approach, Melchiorri, Alessandro et al., JCAP 0901 (2009) 036, arXiv:0810.5133.
[25-6]
Building the full PMNS Matrix from six independent Majorana-type phases, Branco, Gustavo C., Rebelo, M. N., Phys. Rev. D79 (2009) 013001, arXiv:0809.2799.
[25-7]
Testing non-unitarity of neutrino mixing matrices at neutrino factories, Srubabati Goswami, Toshihiko Ota, Phys. Rev. D78 (2008) 033012, arXiv:0802.1434.
[25-8]
Comment on "Can gravity distinguish between Dirac and Majorana neutrinos?", Jose F. Nieves, Palash B. Pal, Phys. Rev. Lett. 98 (2007) 069001, arXiv:gr-qc/0610098.
[25-9]
Unitarity of the Leptonic Mixing Matrix, S. Antusch et al., JHEP 10 (2006) 084, arXiv:hep-ph/0607020.
[25-10]
Can Gravity Distinguish Between Dirac and Majorana Neutrinos?, Dinesh Singh, Nader Mobed, Giorgio Papini, Phys. Rev. Lett. 97 (2006) 041101, arXiv:gr-qc/0605153.
[25-11]
New Method of Enhancing Lepton Number Nonconservation, Ikeda, M., Nakano, I., Sakuda, M., Tanaka, R., Yoshimura, M., arXiv:hep-ph/0506062, 2005.
[25-12]
Nuclear-atomic state degeneracy in neutrinoless double-electron capture: A unique test for a Majorana-neutrino, D. Frekers, arXiv:hep-ex/0506002, 2005.
[25-13]
How Magnetic is the Dirac Neutrino?, Nicole F. Bell et al., Phys. Rev. Lett. 95 (2005) 151802, arXiv:hep-ph/0504134.
[25-14]
Neutrino statistics and big bang nucleosynthesis, Dolgov, A. D., Hansen, S. H., Smirnov, A. Yu., JCAP 0506 (2005) 004, arXiv:astro-ph/0503612.
[25-15]
New Parameterization in Muon Decay and Type of Neutrino, Masaru Doi, Tsuneyuki Kotani, Hiroyuki Nishiura, Prog. Theor. Phys. 114 (2005) 845, arXiv:hep-ph/0502136.
[25-16]
Possible violation of the spin-statistics relation for neutrinos: cosmological and astrophysical consequences, A.D. Dolgov, A.Yu. Smirnov, Phys. Lett. B621 (2005) 1, arXiv:hep-ph/0501066.
[25-17]
A variety of lepton number violating processes related to Majorana neutrino masses, C.S. Lim, E. Takasugi, M. Yoshimura, Prog. Theor. Phys. 113 (2005) 1367, arXiv:hep-ph/0411139.
[25-18]
Neutrino properties and tests of symmetries, de Gouvea, Andre, Nucl. Phys. Proc. Suppl. 143 (2005) 167, arXiv:hep-ph/0408246.
[25-19]
What can we learn from neutrinoless double beta decay experiments?, Bahcall, John N., Murayama, Hitoshi, Pena-Garay, Carlos, Phys. Rev. D70 (2004) 033012, arXiv:hep-ph/0403167.
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Remarks on neutrino tests of special relativity, Glashow, S. L., Halprin, A., Krastev, P. I., Leung, C. N., Pantaleone, J., Phys. Rev. D56 (1997) 2433-2434, arXiv:hep-ph/9703454.
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Helicity - flipping neutral currents and \gamma \gamma ->
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Nonvanishing neutrino mass and the process \gamma \gamma ->
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26 - Phenomenology - Conference Proceedings

[26-1]
Constraints on fourth generation Majorana neutrinos, Alexander Lenz, Heinrich Pas, Dario Schalla, J. Phys. Conf. Ser. 259 (2010) 012096, arXiv:1010.3883. 16th International Symposium on Particles, Strings and Cosmology (PASCOS2010), Valencia (Spain), July 19th - 23rd, 2010.
[26-2]
Majorana Neutrinos in Muon Decay, Hiroyuki Nishiura, arXiv:hep-ph/0601231, 2006. NNR05 workshop on Neutrino Nuclear Responses in Double Beta Decays and Low-energy Astro-neutrinos, CAST and SPring-8, Japan, 2-4 December 2005.
[26-3]
Neutrino, Cosmos, and New Physics, A.D. Dolgov, arXiv:hep-ph/0504238, 2005. Neutrino Telescopes, Venice, 22/02-25/02, 2005 and Rencontre LaThuile-05, 27/02-05/03, 2005.


27 - Phenomenology - Nature - Majorana

[27-1]
Back-to-back pair correlation of Majorana neutrinos with transit magnetic moments, Hyun Kyu Lee, Phys. Rev. D84 (2011) 077302, arXiv:1109.5766.
[27-2]
Lepton number violation in top quark and neutral B meson decays, D. Delepine, G. Lopez Castro, N. Quintero, Phys. Rev. D84 (2011) 096011, arXiv:1108.6009.
[27-3]
Fourth Generation Majorana Neutrinos, Alexander Lenz, Heinrich Pas, Dario Schalla, arXiv:1104.2465, 2011.
[27-4]
Probing Majorana neutrinos in rare K and D, ~D_s, B, B_c meson decays, G. Cvetic, Claudio Dib, Sin Kyu Kang, C. S. Kim, Phys. Rev. D82 (2010) 053010, arXiv:1005.4282.
[27-5]
Lepton-Number Violating Decays of Heavy Mesons, Jin-Mei Zhang, Guo-Li Wang, Eur. Phys. J. C71 (2011) 1715, arXiv:1003.5570.
[27-6]
Experimental Sensitivity for Majorana Neutrinos Produced via a Z Boson at Hadron Colliders, Arvind Rajaraman, Daniel Whiteson, Phys. Rev. D81 (2010) 071301, arXiv:1001.1229.
[27-7]
A new strategy for probing the Majorana neutrino CP violating phases and masses, Delepine, David, Macias, Vannia Gonzalez, Khalil, Shaaban, Castro, Gabriel Lopez, AIP Conf. Proc. 1361 (2011) 395-397, arXiv:0908.2158.
[27-8]
Neutrinoless double beta decays of the top quark and other effects of heavy Majorana neutrinos, Eilam, Gad, PoS 2008LHC (2008) 061, arXiv:0902.4622.
[27-9]
The Search for Heavy Majorana Neutrinos, Anupama Atre, Tao Han, Silvia Pascoli, Bin Zhang, JHEP 05 (2009) 030, arXiv:0901.3589.
[27-10]
Detecting Majorana nature of neutrinos in muon decay, Takeshi Fukuyama, Koji Tsumura, arXiv:0809.5221, 2008.
[27-11]
Model Independent Explorations of Majorana Neutrino Mass Origins, Jenkins, James, arXiv:0805.0303, 2008.
[27-12]
Neutrino Pair Emission from Excited Atoms, M. Yoshimura, Phys. Rev. D75 (2007) 113007, arXiv:hep-ph/0611362.
[27-13]
Signatures for Majorana neutrinos at hadron colliders, Tao Han, Bin Zhang, Phys. Rev. Lett. 97 (2006) 171804, arXiv:hep-ph/0604064.
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28 - Phenomenology - Nature - Majorana - Conference Proceedings

[28-1]
Heavy Flavor Physics, Sheldon Stone, arXiv:1109.3361, 2011. DPF-2011, Providence, RI, August 8-13, 2011.


29 - Phenomenology - Nature - Pseudo-Dirac

[29-1]
Neutrinoless double beta decay with pseudo Dirac neutrinos, Pei-Hong Gu, arXiv:1101.5106, 2011.
[29-2]
Pseudo-Dirac Neutrino Scenario: Cosmic Neutrinos at Neutrino Telescopes, Arman Esmaili, Phys. Rev. D81 (2010) 013006, arXiv:0909.5410.
[29-3]
Probing Pseudo-Dirac Neutrino through Detection of Neutrino Induced Muons from GRB Neutrinos, Debasish Majumdar, Pramana 70 (2008) 51-60, arXiv:hep-ph/0607344.
[29-4]
Pseudo-Dirac Neutrinos, a Challenge for Neutrino Telescopes, J. F. Beacom et al., Phys. Rev. Lett. 92 (2004) 011101, arXiv:hep-ph/0307151.
[29-5]
Pseudo-Dirac scenario for neutrino oscillations, Kobayashi, Makoto, Lim, C. S., Phys. Rev. D64 (2001) 013003, arXiv:hep-ph/0012266.
[29-6]
Phenomenology of pseudo Dirac neutrinos, Joshipura, Anjan S., Rindani, Saurabh D., Phys. Lett. B494 (2000) 114-123, arXiv:hep-ph/0007334.
[29-7]
Pseudo-Dirac solar neutrinos, Nir, Yosef, JHEP 06 (2000) 039, arXiv:hep-ph/0002168.
[29-8]
Pseudo-Dirac neutrinos as a potential complete solution to the neutrino oscillation puzzle, Geiser, A., Phys. Lett. B444 (1999) 358, arXiv:hep-ph/9901433.
[29-9]
Oscillations of pseudo-Dirac neutrinos and the solar neutrino problem, Giunti, C., Kim, C. W., Lee, U. W., Phys. Rev. D46 (1992) 3034-3039, arXiv:hep-ph/9205214.
[29-10]
Pseudo-Dirac neutrinos and the solar neutrino problem, Minakata, Hisakazu, Nunokawa, Hiroshi, Phys. Rev. D45 (1992) 3316-3320.
[29-11]
Cosmological and astrophysical constraints on a pseudo-Dirac tau-neutrino, Dixon, Lance J., Nir, Yosef, Phys. Lett. B266 (1991) 425-430.
[29-12]
Pseudo-Dirac solar neutrinos?, Sarkar, Utpal, Phys. Rev. D35 (1987) 1528.
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The solar neutrino puzzle, the Mikheev-Smirnov-Wolfenstein mechanism and the pseudo-Dirac neutrino, Toshev, S., Phys. Lett. B180 (1986) 285-289.
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Dirac and pseudo-Dirac neutrinos and neutrinoless double beta decay, Nieves, Jose F., Phys. Lett. B147 (1984) 375.
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On pseudo-Dirac neutrinos, neutrino oscillations and neutrinoless double beta decay, Petcov, S. T., Phys. Lett. B110 (1982) 245-249.


30 - Phenomenology - Nature - Pseudo-Dirac - Conference Proceedings

[30-1]
Pseudo-Dirac neutrino, Doi, Masaru, Kenmoku, Masakatsu, Kotani, Tsuneyuki, Nishiura, Hiroyuki, Takasugi, Eiichi, Prog. Theor. Phys. 70 (1983) 1331. Lepton-Photon Conference, Ithaca, N.Y., Aug. 4-9, l983.


31 - Phenomenology - Number of Neutrino Species

[31-1]
Revisiting Constraints on Fourth Generation Neutrino Masses, Carpenter, Linda M., Rajaraman, Arvind, Phys. Rev. D82 (2010) 114019, arXiv:1005.0628.
[31-2]
Neutrino mass and lepton mixing hierarchies and future oscillation experiments, Bilenky, Samoil M., Fabbrichesi, M., Petcov, S. T., Phys. Lett. B276 (1992) 223-230.
[31-3]
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[31-4]
Combined limits on the number of light neutrinos and the top mass from the measurement of  R = \sigma (W ->
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32 - Phenomenology - Mixing - Conference Proceedings

[32-1]
If Theta(13) is large, then what?, Hisakazu Minakata, arXiv:1110.4237, 2011. XIIIth International Workshop on Neutrino Factories, Superbeams and Betabeams (NuFact11), 1-6 August 2011, CERN-University of Geneva, Geneva, Switzerland.


33 - History

[33-1]
On the Earlier and more recent history of the neutrino, Pauli, W., Cambridge Monogr. Part. Phys. Nucl. Phys. Cosmol. 14 (2000) 1-22.
[33-2]
The neutrino: From poltergeist to particle, Reines, F., Rev. Mod. Phys. 68 (1996) 317-327.


String RegExp         Case Insensitive Case Sensitive
       


We Can Put an End to Word Attachments


Authors:
Carlo Giunti / giunti@to.infn.it
Marco Laveder / marco.laveder@pd.infn.it
Last Update: Fri 10 Feb 2012, day 41 of the year 2012, 09:09:27 UTC