Quick search Find article
Quick search
Find article

Lepton flavor violation in type I + III seesaw

Jernej F. Kamenika,c and Miha Nemevšekb,c

Show affiliations


[1]
E. Ma, 1998 Pathways to naturally small neutrino masses, Phys. Rev. Lett. 81 1171 [hep-ph/9805219]
CrossRef  Preprint  SPIRES 
[2]
P. Minkowski, 1977 μ&to; e γ at a rate of one out of 1-billion muon decays?, Phys. Lett. B 67 421
CrossRef 
[3]
T. Yanagida, 1979 Horizontal gauge symmetry and masses of neutrinos, in the proceedings of the Workshop on the Baryon Number of the Universe and Unified Theories, February 13-14, Tsukuba, Japan [KEK-79-18-95]

[4]
M. Gell-Mann, P. Ramond and R. Slansky, 1979 Complex spinors and unified theories, in Super-gravity, P. van Nieuwenhuizen and D.Z. Freedman eds.), North Holland Publ. Co., The Netherlands [PRINT-80-0576-CERN]

[5]
S.L. Glashow, 1979 The future of elementary particle physics NATO Adv. Study Inst. Ser. B Phys. 59 687

[6]
R.N. Mohapatra and G. Senjanović, 1980 Neutrino mass and spontaneous parity nonconservation, Phys. Rev. Lett. 44 912
CrossRef 
[7]
M. Magg and C. Wetterich, 1980 Neutrino mass problem and gauge hierarchy, Phys. Lett. B 94 61
CrossRef 
[8]
G. Lazarides, Q. Shafi and C. Wetterich, 1981 Proton lifetime and fermion masses in an SO(10) model, Nucl. Phys. B 181 287
CrossRef 
[9]
R.N. Mohapatra and G. Senjanović, 1981 Neutrino masses and mixings in gauge models with spontaneous parity violation, Phys. Rev. D 23 165
CrossRef 
[10]
R. Foot, H. Lew, X.G. He and G.C. Joshi, 1989 Seesaw neutrino masses induced by a triplet of leptons, Z. Phys. C 44 441
CrossRef 
[11]
B. Bajc and G. Senjanović, 2007 Seesaw at LHC J. High Energy Phys. JHEP08(2007)014 [hep-ph/0612029]
IOPscience  Preprint  SPIRES 
[12]
B. Bajc, M. Nemevsek and G. Senjanović, 2007 Probing seesaw at LHC, Phys. Rev. D 76 055011 [hep-ph/0703080]
CrossRef  Preprint  SPIRES 
[13]
R. Franceschini, T. Hambye and A. Strumia, 2008 Type-III see-saw at LHC, Phys. Rev. D 78 033002 [0805.1613]
CrossRef  Preprint  SPIRES 
[14]
A. Arhrib et al., Collider signatures for heavy lepton triplet in type I+III seesaw, [0904.2390]
Preprint  SPIRES 
[15]
F. del Aguila and J.A. Aguilar-Saavedra, 2009 Distinguishing seesaw models at LHC with multi-lepton signals, Nucl. Phys. B 813 22 [0808.2468]
CrossRef  Preprint  SPIRES 
[16]
A. Abada, C. Biggio, F. Bonnet, M.B. Gavela and T. Hambye, 2007 Low energy effects of neutrino masses J. High Energy Phys. JHEP12(2007)061 [0707.4058]
IOPscience  Preprint  SPIRES 
[17]
S. Antusch, C. Biggio, E. Fernandez-Martinez, M.B. Gavela and J. Lopez-Pavon, 2006 Unitarity of the leptonic mixing matrix J. High Energy Phys. JHEP10(2006)084 [hep-ph/0607020]
IOPscience  Preprint  SPIRES 
[18]
X.-G. He and S. Oh, 2009 Lepton FCNC in type III seesaw model J. High Energy Phys. JHEP09(2009)027 [0902.4082]
IOPscience  Preprint  SPIRES 
[19]
A. Arhrib, R. Benbrik and C.-H. Chen, τ lepton flavor violation in type-III seesaw model, [0903.1553]
Preprint  SPIRES 
[20]
J.A. Casas and A. Ibarra, 2001 Oscillating neutrinos and μ&to; e, γ, Nucl. Phys. B 618 171 [hep-ph/0103065]
CrossRef  Preprint  SPIRES 
[21]
A. Ibarra and G.G. Ross, 2004 Neutrino phenomenology: the case of two right handed neutrinos, Phys. Lett. B 591 285 [hep-ph/0312138]
CrossRef  Preprint  SPIRES 
[22]
T. Schwetz, M.A. Tortola and J.W.F. Valle, 2008 Three-flavour neutrino oscillation update, New J. Phys. 10 113011 [0808.2016]
IOPscience  Preprint  SPIRES 
[23]
C. Biggio, 2008 The contribution of fermionic seesaws to the anomalous magnetic moment of leptons, Phys. Lett. B 668 378 [0806.2558]
CrossRef  Preprint  SPIRES 
[24]
Particle Data Group collaboration, C. Amsler et al., 2008 Review of particle physics, Phys. Lett. B 667 1
CrossRef 
[25]
T. Feldmann, P. Kroll and B. Stech, 1998 Mixing and decay constants of pseudoscalar mesons, Phys. Rev. D 58 114006 [hep-ph/9802409]
CrossRef  Preprint  SPIRES 
[26]
SINDRUM II. collaboration, C. Dohmen et al., 1993 Test of lepton flavor conservation in μ&to; e conversion on titanium, Phys. Lett. B 317 631
CrossRef 
[27]
SINDRUM II collaboration, W. Bertl et al., 2006 A search for μ-e conversion in muonic gold, Eur. Phys. J. C 47 337
CrossRef 
[28]
R. Kitano, M. Koike and Y. Okada, 2002 Detailed calculation of lepton flavor violating muon electron conversion rate for various nuclei, Phys. Rev. D 66 096002 [hep-ph/0203110]
CrossRef  Preprint  SPIRES 
[29]
C. Ankenbrandt et al., Using the Fermilab proton source for a muon to electron conversion experiment, [physics/0611124]
Preprint 
[30]
See An experimental search for μ--e- conversion at a sensitivity of 10-16 with a slow-extracted bunched beam, online at http://j-parc.jp/NuclPart/pac_0701/pdf/P21-LOI.pdf

[31]
PRISM/PRIME group, An experimental search for a μ--e- conversion at a sensitivity of 10-18 with a higly intense muon source: PRISM, online at http://j-parc.jp/NuclPart/pac_0606/pdf/p20-Kuno.pdf

[32]
A. Strumia and F. Vissani, Neutrino masses and mixings and., [hep-ph/0606054]
Preprint  SPIRES 
[33]
MEG collaboration, S. Dussoni, 2009 Searching for lepton flavor violation with the MEG experiment (or looking for flying pigs), Nucl. Phys. Proc. Suppl. 187 109
CrossRef 
[34]
D.M. Asner et al., Physics at BES-III, [0809.1869]
Preprint  SPIRES 
[35]
D.G. Hitlin et al., Proceedings of SuperB Workshop 6: new physics at the super flavor factory, [0810.1312]
Preprint  SPIRES 
[36]
L. Lavoura, 2003 General formulae for f1 &to; f2 γ, Eur. Phys. J. C 29 191 [hep-ph/0302221]
CrossRef  Preprint  SPIRES 
[37]
T.P. Cheng and L.F. Li, 2000 Gauge theory of elementary particle physics: Problems and solutions, Clarendon Press, Oxford U.K., see pages 244-250 [http://www.slac.stanford.edu/spires/find/hep/www?irn=4384024]

[38]
A. Abada, C. Biggio, F. Bonnet, M.B. Gavela and T. Hambye, 2008 μ&to; e γ and τ&to; l γ decays in the fermion triplet seesaw model, Phys. Rev. D 78 033007 [0803.0481]
CrossRef  Preprint  SPIRES 
crossref member

  1. Lepton flavor violation in type I + III seesaw

    Jernej F. Kamenik and Miha Nemevšek JHEP11(2009)023

  2. International comparison of electrolytic conductivity between the DFM (Denmark), the NIST (USA), and the OMH (Hungary)

    R H Shreiner et al 2001 Metrologia 38 549

  3. A new model for the collective beam–beam interaction

    J A Ellison et al 2007 New J. Phys. 9 32

  4. Solid state gas sensors

    P T Moseley 1997 Meas. Sci. Technol. 8 223

  5. Optical response of a single noble metal nanoparticle

    Otto Muskens et al 2006 J. Opt. A: Pure Appl. Opt. 8 S264

  6. Special issue on medical bionics

    Robert K Shepherd, PhD 2009 J. Neural Eng. 6 060201

  7. A computational study of λ-lac mutants

    Maria Werner and Erik Aurell 2009 Phys. Biol. 6 046007

  8. Position-dependent diffusion coefficients and free energies from Bayesian analysis of equilibrium and replica molecular dynamics simulations

    Gerhard Hummer 2005 New J. Phys. 7 34

  9. QCD effects on ``stable'' micro black holes at the LHC

    Itzhak Goldman et al JHEP12(2009)058

  10. Schrödinger-cat entangled state reconstruction in the Penning trap

    Michol Massini et al 2000 New J. Phys. 2 20

View by subject




Export








Please login to access our web services, or create an account if you don't yet have one.

You must have cookies enabled in your web browser to be able to login.

Username
Password

Forgotten your password? Get a new one here.