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We show that a unified framework based on an $SU(2)_H$ horizontal symmetry which generates a naturally large neutrino transition magnetic moment and explains the XENON1T electron recoil excess also predicts a positive shift in the muon anomalous magnetic moment.
1907
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M. Hoferichter, B.-L. Hoid, and B. Kubis, “Three-pion contribution to hadronic vacuum polarization,”
1907
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1908
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1911
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1912
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J. Bernstein, M. Ruderman, and G. Feinberg, “Electromagnetic Properties of the neutrino,”
1963
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J. P. Leveille, “The Second Order Weak Correction to (G-2) of the Muon in Arbitrary Gauge Models,”
1978
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A. Zee, “A Theory of Lepton Number Violation, Neutrino Majorana Mass, and Oscillation,”
1980
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1986
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1988
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1989
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1990
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1993
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G. G. Raffelt, “Particle physics from stars,”
1999
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K. Melnikov and A. Vainshtein, “Hadronic light-by-light scattering contribution to the muon anomalous magnetic moment revisited,”
2004
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2006
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A. Czarnecki, W. J. Marciano, and A. Vainshtein, “Refinements in electroweak contributions to the muon anomalous magnetic moment,”
2006
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2013
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2013
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A. Pich, “Precision Tau Physics,”
2014
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2014
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2007
Cited alongside, same era.
2007
Cited alongside, same era.
K. Hagiwara, A. D. Martin, D. Nomura, and T. Teubner, “Improved predictions for g-2 of the muon and alpha(QED) (M**2(Z)),”
2007
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2010
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2012
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2012
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2013
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2014
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2015
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2017
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R. H. Parker, C. Yu, W. Zhong, B. Estey, and H. Müller, “Measurement of the fine-structure constant as a test of the standard model,”
2018
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2018
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2019
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L. Morel, Z. Yao, P. Cladé, and S. Guellati-Khélifa, “Determination of the fine-structure constant with an accuracy of 81 parts per trillion,”
2020
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