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We compute the one-loop running of the dimension-six CP-even Higgs operators in the Standard Model effective field theory involving the right-handed component of the would-be Dirac neutrinos.
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J. Elias-Miro, J. Espinosa, E. Masso and A. Pomarol, Higgs windows to new physics through d=6 operators: constraints and one-loop anomalous dimensions , JHEP 11
2013
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E. E. Jenkins, A. V. Manohar and M. Trott, Renormalization Group Evolution of the Standard Model Dimension Six Operators I: Formalism and lambda Dependence , JHEP 10
2013
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E. E. Jenkins, A. V. Manohar and M. Trott, Renormalization Group Evolution of the Standard Model Dimension Six Operators II: Yukawa Dependence , JHEP 01
2014
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R. Alonso, E. E. Jenkins, A. V. Manohar and M. Trott, Renormalization Group Evolution of the Standard Model Dimension Six Operators III: Gauge Coupling Dependence and Phenomenology , JHEP 04
2014
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L. Duarte, J. Peressutti and O. A. Sampayo, Majorana neutrino decay in an Effective Approach , Phys. Rev. D92
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U. K. Dey, T. N. Maity and T. S. Ray, Prospects of Migdal Effect in the Explanation of XENON1T Electron Recoil Excess , 2006.12529
2006
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N. F. Bell, J. B. Dent, B. Dutta, S. Ghosh, J. Kumar and J. L. Newstead, Explaining the XENON1T excess with Luminous Dark Matter , 2006.12461
2006
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Y. Chen, J. Shu, X. Xue, G. Yuan and Q. Yuan, Sun Heated MeV-scale Dark Matter and the XENON1T Electron Recoil Excess , 2006.12447
2006
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D. Aristizabal Sierra, V. De Romeri, L. Flores and D. Papoulias, Light vector mediators facing XENON1T data , 2006.12457
2006
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J. Buch, M. A. Buen-Abad, J. Fan and J. S. C. Leung, Galactic Origin of Relativistic Bosons and XENON1T Excess , 2006.12488
2006
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G. Choi, M. Suzuki and T. T. Yanagida, XENON1T Anomaly and its Implication for Decaying Warm Dark Matter , 2006.12348
2006
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G. Paz, A. A. Petrov, M. Tammaro and J. Zupan, Shining dark matter in Xenon1T , 2006.12462
2006
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2015
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C. Giunti and A. Studenikin, Neutrino electromagnetic interactions: a window to new physics , Rev. Mod. Phys. 87
2015
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B. Henning, X. Lu and H. Murayama, How to use the Standard Model effective field theory , JHEP 01
2016
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S. A. R. Ellis, J. Quevillon, T. You and Z. Zhang, Mixed heavy–light matching in the Universal One-Loop Effective Action , Phys. Lett. B762
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2016
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2016
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Z. Zhang, Covariant diagrams for one-loop matching , JHEP 05
2017
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S. A. R. Ellis, J. Quevillon, T. You and Z. Zhang, Extending the Universal One-Loop Effective Action: Heavy-Light Coefficients , JHEP 08
2017
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L. E. Ibanez, V. Martin-Lozano and I. Valenzuela, Constraining Neutrino Masses, the Cosmological Constant and BSM Physics from the Weak Gravity Conjecture , JHEP 11
2017
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H. Ooguri and C. Vafa, Non-supersymmetric AdS and the Swampland , Adv. Theor. Math. Phys. 21
2017
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Y. Liao and X.-D. Ma, Operators up to Dimension Seven in Standard Model Effective Field Theory Extended with Sterile Neutrinos , Phys. Rev. D96
2017
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E. E. Jenkins, A. V. Manohar and P. Stoffer, Low-Energy Effective Field Theory below the Electroweak Scale: Anomalous Dimensions , JHEP 01
2018
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E. E. Jenkins, A. V. Manohar and P. Stoffer, Low-Energy Effective Field Theory below the Electroweak Scale: Operators and Matching , JHEP 03
2018
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B. Henning, X. Lu and H. Murayama, One-loop Matching and Running with Covariant Derivative Expansion , JHEP 01
2018
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J. C. Criado, MatchingTools: a Python library for symbolic effective field theory calculations , Comput. Phys. Commun. 227
2018
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L. Duarte, J. Peressutti and O. A. Sampayo, Not-that-heavy Majorana neutrino signals at the LHC , J. Phys. G45
2018
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Y. Cai, T. Han, T. Li and R. Ruiz, Lepton Number Violation: Seesaw Models and Their Collider Tests , Front. in Phys. 6
2018
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Particle Data Group
2018
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I. Brivio and M. Trott, The Standard Model as an Effective Field Theory , Phys. Rept. 793
2019
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S. Das Bakshi, J. Chakrabortty and S. K. Patra, CoDEx: Wilson coefficient calculator connecting SMEFT to UV theory , Eur. Phys. J. C79
2019
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