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We study the possibility of production of primordial black holes (PBHs) from bubble collisions during a first-order phase transition.
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C. L. Carilli and S. Rawlings, “Science with the Square Kilometer Array: Motivation, key science projects, standards and assumptions,” New Astron. Rev
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2004
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J. Crowder and N. J. Cornish, “Beyond LISA: Exploring future gravitational wave missions,” Phys. Rev. D
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V. Corbin and N. J. Cornish, “Detecting the cosmic gravitational wave background with the big bang observer,” Class. Quant. Grav
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C. Hamadache et al
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D. Bodeker and G. D. Moore, “Electroweak Bubble Wall Speed Limit,” JCAP
2017
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A. Katz, J. Kopp, S. Sibiryakov, and W. Xue, “Femtolensing by Dark Matter Revisited,” JCAP
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A. Moiseev, S. Profumo, A. Coogan, and L. Morrison, “Snowmass 2021 Letter of Interest: Searching for Dark Matter and New Physics with GECCO, 2020,”. https://www.snowmass21.org/docs/files/summaries/CF/SNOWMASS21-CF3_CF1_Stefano_Profumo-007.pdf
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A. Azatov, M. Vanvlasselaer, and W. Yin, “Baryogenesis via relativistic bubble walls,” JHEP
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P. Huang and K.-P. Xie, “Primordial black holes from an electroweak phase transition,” Phys. Rev. D
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Y. Gouttenoire, R. Jinno, and F. Sala, “Friction pressure on relativistic bubble walls,” JHEP
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