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We study the explosive production of gauge fields during axion inflation in a novel gradient expansion formalism that describes the time evolution of a set of bilinear electromagnetic functions in position space.
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2006
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M.M. Anber and L. Sorbo, N-flationary magnetic fields, J. Cosmol. Astropart. Phys. 10 (2006) 018 [ arXiv: astro-ph/0606534 ]
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M. Srednicki, Quantum Field Theory
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D. H. Lyth, D. Seery, Classicality of the primordial perturbations, Phys. Lett. B 662
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2009
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2010
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A. Neronov and I. Vovk, Evidence for strong extragalactic magnetic fields from Fermi observations of TeV blazars, Science 328
2010
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2010
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2016
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C. Stahl and S.-S. Xue, Schwinger effect and backreaction in de Sitter spacetime, Phys. Lett. B 760
2016
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2016
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K. Kamada and A.J. Long, Baryogenesis from decaying magnetic helicity, Phys. Rev. D 94
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2017
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2017
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R. Sharma and S. Singh, Multifaceted Schwinger effect in de Sitter space, Phys. Rev. D 96
2017
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2018
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T. Hayashinaka and S.-S. Xue, Physical renormalization condition for de Sitter QED, Phys. Rev. D 97
2018
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T. Hayashinaka, Analytical investigation into electromagnetic response of quantum fields in de Sitter spacetime, Ph.D. thesis, University of Tokyo, 2018
2018
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2018
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C. Stahl, Schwinger effect impacting primordial magnetogenesis, Nucl. Phys B939
2018
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H. Kitamoto, Schwinger effect in inflaton-driven electric field, Phys. Rev. D 98
2018
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2018
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2019
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2019
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2019
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2020
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R.A. Batista and A. Saveliev, The gamma-ray window to intergalactic magnetism, Universe 7
2021
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M. Kamarpour, Magnetogenesis by non-minimal coupling to gravity in Higgs inflation model, Ann. Phys. (Amsterdam) 428
2021
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