Instituto de Física Teórica UAM/CSIC, Universidad Autónoma de Madrid, 28049 Madrid, Spain.
Philos Trans A Math Phys Eng Sci. 2019 Dec 30;377(2161):20190091. doi: 10.1098/rsta.2019.0091. Epub 2019 Nov 11.
We review here a new scenario of electroweak baryogenesis where the local energy released in the gravitational collapse to form primordial black holes (PBHs) at the quark-hadron (QCD) epoch drives over-the-barrier sphaleron transitions in a far from equilibrium environment with just the standard model CP violation. Baryons are efficiently produced in relativistic collisions around the black holes and soon redistribute to the rest of the universe, generating the observed matter-antimatter asymmetry well before primordial nucleosynthesis. Therefore, in this scenario there is a common origin of both the dark matter to baryon ratio and the photon to baryon ratio. Moreover, the sudden drop in radiation pressure of relativistic matter at // decoupling, the QCD transition and annihilation enhances the probability of PBH formation, inducing a multi-modal broad mass distribution with characteristic peaks at 10, 1, 30 and 10 , rapidly falling at smaller and larger masses, which may explain the LIGO-Virgo black hole mergers as well as the OGLE-GAIA microlensing events, while constituting all of the cold dark matter today. We predict the future detection of binary black hole (BBH) mergers in LIGO with masses between 1 and 5 , as well as above 80 , with very large mass ratios. Next generation gravitational wave and microlensing experiments will be able to test this scenario thoroughly. This article is part of a discussion meeting issue 'Topological avatars of new physics'.
我们在这里回顾了一种新的电弱重子生成情景,其中在夸克-强子(QCD)时代由于引力塌缩而在局部释放的能量,在远离平衡的环境中驱动过垒的 Sphaleron 跃迁,而这种环境仅具有标准模型 CP 破坏。在黑洞周围的相对论性碰撞中,重子有效地产生,并很快重新分布到宇宙的其余部分,在原始核合成之前很早就产生了观测到的物质-反物质不对称性。因此,在这种情景中,暗物质与重子的比例和光子与重子的比例都有共同的起源。此外,相对论物质的辐射压力在//脱耦时的突然下降、QCD 相变和湮灭增强了 PBH 形成的概率,诱导了具有 10、1、30 和 10 的特征峰的多模态宽质量分布,在更小和更大的质量处迅速下降,这可能解释了 LIGO-Virgo 黑洞合并以及 OGLE-GAIA 微透镜事件,同时构成了当今所有冷暗物质。我们预测未来在 LIGO 中检测到质量在 1 到 5 之间以及质量比非常大的 80 以上的双黑洞(BBH)合并。下一代引力波和微透镜实验将能够彻底检验这种情景。本文是“新物理的拓扑化身”讨论会议的一部分。