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Using the kinetic approach, we study the impact of the charged particles dynamics due to the Schwinger effect on the electric field evolution during inflation.
1903
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1998
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S. Schmidt, D. Blaschke, G. Röpke, S.A. Smolyansky, A.V. Prozorkevich, V.D. Toneev, A quantum kinetic equation for particle production in the Schwinger mechanism, Int. J. Mod. Phys. E 07
1998
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1998
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1999
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P. Arnold, G. Moore, and L. Yaffe, Transport coefficients in high temperature gauge theories, 1. Leading-log results, J. High Energy Phys. 11 (2000) 001 [ arXiv: hep-ph/0010177 ]
2000
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R. Alkofer, M.B. Hecht, C.D. Roberts, S.M. Schmidt, and D.V. Vinnik, Pair creation and an X-ray free electron laser, Phys. Rev. Lett. 87
2015
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2015
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2016
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2001
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M. Giovannini, Variation of the gauge couplings during inflation, Phys. Rev. D 64
2001
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K. Bamba and J. Yokoyama, Large-scale magnetic fields from inflation in dilaton electromagnetism, Phys. Rev. D 69
2004
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B.A. Bassett, S. Tsujikawa, and D. Wands, Inflation dynamics and reheating, Rev. Mod. Phys. 78
2006
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2008
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S. Weinberg, Cosmology
2008
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2009
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2009
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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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2016
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2016
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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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2017
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2017
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2018
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2018
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2018
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2018
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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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C. Stahl, Schwinger effect impacting primordial magnetogenesis, Nucl. Phys B939
2018
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2018
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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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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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D.B. Blaschke, L. Juchnowski, and A. Otto, Kinetic approach to pair production in strong fields – Two lessons for applications to heavy-ion collisions, Particles 2
2019
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