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In previous work, two of us have proposed a model of inflationary magnetogenesis based on a rolling auxiliary field able both to account for the magnetic fields inferred by the (non) observation of gamma-rays from blazars, and to start the galactic dynamo, without incurring in any strong coupling or strong backreaction regime.
A. Neronov and D. V. Semikoz, Sensitivity of gamma-ray telescopes for detection of magnetic fields in intergalactic medium , Phys. Rev. D80
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M. S. Turner and L. M. Widrow, Inflation Produced, Large Scale Magnetic Fields , Phys. Rev. D37
1988
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B. Ratra, Cosmological ’seed’ magnetic field from inflation , Astrophys. J. 391
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W. D. Garretson, G. B. Field and S. M. Carroll, Primordial magnetic fields from pseudoGoldstone bosons , Phys. Rev. D46
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D. T. Son, Magnetohydrodynamics of the early universe and the evolution of primordial magnetic fields , Phys. Rev. D59
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G. B. Field and S. M. Carroll, Cosmological magnetic fields from primordial helicity , Phys. Rev. D62
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T. Vachaspati, Estimate of the primordial magnetic field helicity , Phys. Rev. Lett. 87
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M. Christensson, M. Hindmarsh and A. Brandenburg, Inverse cascade in decaying 3-D magnetohydrodynamic turbulence , Phys. Rev. E64
2001
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G. Sigl, Cosmological magnetic fields from primordial helical seeds , Phys. Rev. D66
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R. Banerjee and K. Jedamzik, The Evolution of cosmic magnetic fields: From the very early universe, to recombination, to the present , Phys. Rev. D70
2004
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A. Brandenburg and K. Subramanian, Astrophysical magnetic fields and nonlinear dynamo theory , Phys. Rept. 417
2005
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M. M. Anber and L. Sorbo, N-flationary magnetic fields , JCAP 0610
2006
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L. Campanelli, Evolution of Magnetic Fields in Freely Decaying Magnetohydrodynamic Turbulence , Phys. Rev. Lett. 98
2007
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J. Martin and J. Yokoyama, Generation of Large-Scale Magnetic Fields in Single-Field Inflation , JCAP 0801
2008
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R. M. Kulsrud and E. G. Zweibel, The Origin of Astrophysical Magnetic Fields , Rept. Prog. Phys. 71
2008
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V. Demozzi, V. Mukhanov and H. Rubinstein, Magnetic fields from inflation? , JCAP 0908
2009
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S. Kanno, J. Soda and M.-a. Watanabe, Cosmological Magnetic Fields from Inflation and Backreaction , JCAP 0912
2009
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K. A. Malik and D. Wands, Cosmological perturbations , Phys. Rept. 475
2009
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J. Donnert, K. Dolag, H. Lesch and E. Muller, Cluster Magnetic Fields from Galactic Outflows , Mon. Not. Roy. Astron. Soc. 392
2009
Cited alongside, same era.
A. Neronov and I. Vovk, Evidence for strong extragalactic magnetic fields from Fermi observations of TeV blazars , Science 328
2010
Cited alongside, same era.
M. M. Anber and L. Sorbo, Naturally inflating on steep potentials through electromagnetic dissipation , Phys. Rev. D81
2010
Cited alongside, same era.
A. M. Taylor, I. Vovk and A. Neronov, Extragalactic magnetic fields constraints from simultaneous GeV-TeV observations of blazars , Astron. Astrophys. 529
2011
Cited alongside, same era.
L. Sorbo, Parity violation in the Cosmic Microwave Background from a pseudoscalar inflaton , JCAP 1106
2011
Cited alongside, same era.
S. Mukohyama, R. Namba, M. Peloso and G. Shiu, Blue Tensor Spectrum from Particle Production during Inflation , JCAP 1408
2014
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C. Caprini and S. Gabici, Gamma-ray observations of blazars and the intergalactic magnetic field spectrum , Phys. Rev. D91
2015
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G. Tasinato, A scenario for inflationary magnetogenesis without strong coupling problem , JCAP 1503
2015
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A. Brandenburg, T. Kahniashvili and A. G. Tevzadze, Nonhelical inverse transfer of a decaying turbulent magnetic field , Phys. Rev. Lett. 114
2015
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M. M. Anber and E. Sabancilar, Hypermagnetic Fields and Baryon Asymmetry from Pseudoscalar Inflation , Phys. Rev. D92
2015
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N. Barnaby and M. Peloso, Large Nongaussianity in Axion Inflation , Phys. Rev. Lett. 106
2011
Cited alongside, same era.
R. Durrer, L. Hollenstein and R. K. Jain, Can slow roll inflation induce relevant helical magnetic fields? , JCAP 1103
2011
Cited alongside, same era.
I. Vovk, A. M. Taylor, D. Semikoz and A. Neronov, Fermi/LAT observations of 1ES 0229+200: implications for extragalactic magnetic fields and background light , Astrophys. J. 747
2012
Cited alongside, same era.
C. Bonvin, C. Caprini and R. Durrer, Magnetic fields from inflation: the transition to the radiation era , Phys. Rev. D86
2012
Cited alongside, same era.
N. Barnaby, R. Namba and M. Peloso, Observable non-gaussianity from gauge field production in slow roll inflation, and a challenging connection with magnetogenesis , Phys. Rev. D85
2012
Cited alongside, same era.
N. Barnaby, J. Moxon, R. Namba, M. Peloso, G. Shiu and P. Zhou, Gravity waves and non-Gaussian features from particle production in a sector gravitationally coupled to the inflaton , Phys. Rev. D86
2012
Cited alongside, same era.
D. Carney, W. Fischler, E. D. Kovetz, D. Lorshbough and S. Paban, Rapid field excursions and the inflationary tensor spectrum , JHEP 11
2012
Cited alongside, same era.
M. Ballardini, F. Finelli and D. Paoletti, CMB anisotropies generated by a stochastic background of primordial magnetic fields with non-zero helicity , JCAP 1510
2015
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T. Fujita, R. Namba, Y. Tada, N. Takeda and H. Tashiro, Consistent generation of magnetic fields in axion inflation models , JCAP 1505
2015
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P. Adshead, J. T. Giblin, T. R. Scully and E. I. Sfakianakis, Magnetogenesis from axion inflation , JCAP 1610
2016
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T. Kahniashvili, A. Brandenburg and A. G. Tevzadze, The evolution of primordial magnetic field since its generation , Phys. Scripta 91
2016
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T. Fujita and K. Kamada, Large-scale magnetic fields can explain the baryon asymmetry of the Universe , Phys. Rev. D93
2016
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K. Kamada and A. J. Long, Baryogenesis from decaying magnetic helicity , Phys. Rev. D94
2016
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K. Kamada and A. J. Long, Evolution of the Baryon Asymmetry through the Electroweak Crossover in the Presence of a Helical Magnetic Field , Phys. Rev. D94
2016
Later among the works it cites.
R. Namba, M. Peloso, M. Shiraishi, L. Sorbo and C. Unal, Scale-dependent gravitational waves from a rolling axion , JCAP 1601
2016
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R. Z. Ferreira, J. Ganc, J. Noreña and M. S. Sloth, On the validity of the perturbative description of axions during inflation , JCAP 1604
2016
Later among the works it cites.
M. Peloso, L. Sorbo and C. Unal, Rolling axions during inflation: perturbativity and signatures , JCAP 1609
2016
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BICEP2, Keck Array
2016
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A. Brandenburg and T. Kahniashvili, Classes of hydrodynamic and magnetohydrodynamic turbulent decay , Phys. Rev. Lett. 118
2017
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T. Kahniashvili, A. Brandenburg, R. Durrer, A. G. Tevzadze and W. Yin, Scale-invariant helical magnetic field evolution and the duration of inflation , JCAP 1712
2017
Closest in time.