Mukaida Kyohei, Schmitz Kai, Yamada Masaki
Theory Center, IPNS, KEK, Tsukuba, Ibaraki 305-0801, Japan.
Graduate University for Advanced Studies, Tsukuba, Ibaraki 305-0801, Japan.
Phys Rev Lett. 2022 Jul 1;129(1):011803. doi: 10.1103/PhysRevLett.129.011803.
Charged-lepton flavor violation (CLFV) is a smoking-gun signature of physics beyond the standard model. The discovery of CLFV in upcoming experiments would indicate that CLFV processes must have been efficient in the early Universe at relatively low temperatures. In this Letter, we point out that such efficient CLFV interactions open up new ways of creating the baryon asymmetry of the Universe. First, we quote the two-loop corrections from charged-lepton Yukawa interactions to the chemical transport in the standard model plasma, which imply that nonzero lepton flavor asymmetries summing up to B-L=0 are enough to generate the baryon asymmetry. Then, we describe two scenarios of what we call leptoflavorgenesis, where efficient CLFV processes are responsible for the generation of primordial lepton flavor asymmetries that are subsequently converted to a baryon asymmetry by weak sphaleron processes. Here, the conversion factor from lepton flavor asymmetry to baryon asymmetry is suppressed by charged-lepton Yukawa couplings squared, which provides a natural explanation for the smallness of the observed baryon-to-photon ratio.
带电轻子味违反(CLFV)是超出标准模型的物理学的关键信号。在即将进行的实验中发现CLFV将表明,CLFV过程在早期宇宙相对低温时必定是有效的。在本信函中,我们指出,这种有效的CLFV相互作用开辟了创造宇宙重子不对称性的新途径。首先,我们引用带电轻子汤川相互作用对标准模型等离子体中化学输运的两圈修正,这意味着总和为B - L = 0的非零轻子味不对称足以产生重子不对称。然后,我们描述了两种我们称之为轻子味生成的情景,其中有效的CLFV过程负责产生原始轻子味不对称,随后通过弱sphaleron过程将其转化为重子不对称。在此,从轻子味不对称到重子不对称的转换因子被带电轻子汤川耦合平方所抑制,这为观测到的重子与光子比率之小提供了一个自然的解释。