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We study a minimal extension of the Standard Model by introducing three right-handed neutrinos and a new scotogenic scalar doublet, in which the mass splittings between neutral and charged components are responsible for the $W$-boson mass newly measured by the CDF collaboration.
1912
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S. J. Huber and T. Konstandin, Gravitational Wave Production by Collisions: More Bubbles
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L. J. Hall, K. Jedamzik, J. March-Russell, and S. M. West, Freeze-In Production of FIMP Dark Matter
2010
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L. Lopez Honorez and C. E. Yaguna, A new viable region of the inert doublet model
2011
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2011
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A. Arhrib, R. Benbrik, and N. Gaur, H → γ γ H\to\gamma\gamma in Inert Higgs Doublet Model
2012
E. Molinaro, C. E. Yaguna, and O. Zapata, FIMP realization of the scotogenic model
2014
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N. Blinov, S. Profumo, and T. Stefaniak, The Electroweak Phase Transition in the Inert Doublet Model
2015
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2015
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A. G. Hessler, A. Ibarra, E. Molinaro, and S. Vogl, Probing the scotogenic FIMP at the LHC
2017
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D. Bodeker and G. D. Moore, Electroweak Bubble Wall Speed Limit
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D. Borah and J. M. Cline, Inert Doublet Dark Matter with Strong Electroweak Phase Transition
2012
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G. Gil, P. Chankowski, and M. Krawczyk, Inert Dark Matter and Strong Electroweak Phase Transition
2012
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2012
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2012
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2012
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2013
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2013
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2017
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Y.-M. Hu, J. Mei, and J. Luo, Science prospects for space-borne gravitational-wave missions
2017
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W.-R. Hu and Y.-L. Wu, The Taiji Program in Space for gravitational wave physics and the nature of gravity
2017
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Y. Li and C.-D. Lü, Recent Anomalies in B Physics
2018
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2019
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2019
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W.-H. Ruan, Z.-K. Guo, R.-G. Cai, and Y.-Z. Zhang, Taiji program: Gravitational-wave sources
2020
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