论文标题
弦乐宇宙学中的引力异常:从通货膨胀到斧头暗物质?
Gravitational Anomalies in string-inspired Cosmologies: from Inflation to Axion Dark Matter?
论文作者
论文摘要
在这次演讲中,我简要审查了一个以弦乐启发的宇宙学模型的演变为情景,其中大爆炸后早期的早期时代形成的原始引力波(GW)的冷凝物被认为是造成通货膨胀的原因,然后诱导平稳的出口到辐射主导的epoch。原始的轴突场存在于基本的无质量引力(骨)弦串多重上,夫妇与非平凡的GW诱导的异常。由于这种耦合,存在(自发)Lorentz对称性的斧头背景构型,并在通货膨胀结束时保持未稀释。在具有沉重无菌右中微子(RHN)的模型中,此类背景与宇宙中物质抗逆抗物不对称的新型(洛伦兹和CPT违反)机制有关,通过RHN的不对称衰变与标准模型颗粒和反分析有关。在QCD时期,轴形成了偶然的质量,因此可以发挥暗物质(DM)的作用。在整个演变中,这种宇宙的能量密度具有“运行真空模型”的形式,也就是说,它可以在哈勃参数$ h(t)$的均匀幂的功率系列中扩展。但是,这些术语的系数在各种宇宙学时代都不同。对于我们的模型的现象学,这与当前的宇宙学数据是一致的,并且也可以帮助减轻(某些)紧张局势,这足以考虑到$ h(t)$的四分之一权力。在早期的宇宙阶段,是由GW引力异常凝结引起的$ h^4(t)$项,它可以驱动通货膨胀而无需外部通气场。
In this talk, I review briefly a scenario for the evolution of a string-inspired cosmological model, in which condensates of primordial gravitational waves (GW), formed at the very early eras after the Big Bang, are considered responsible for inducing inflation and then a smooth exit to a radiation dominated epoch. Primordial axion fields, that exist in the fundamental massless gravitational (bosonic) string multiplet, couple to the non-trivial GW-induced anomalies. As a result of this coupling, there exist axion background configurations which violate (spontaneously) Lorentz symmetry, and remain undiluted at the end of inflation. In models with heavy sterile right-handed neutrinos (RHN), such backgrounds are linked to novel (Lorentz and CPT Violating) mechanisms for the generation of matter-antimatter asymmetry in the Cosmos, via the asymmetric decays of the RHN to standard model particles and antiparticles. During the QCD epoch, the axions develop an instanton-induced mass and can, thus, play the rôle of Dark Matter (DM). The energy density of such a Universe, throughout its evolution, has the form of that of a "running vacuum model", that is, it can be expanded in power series of even powers of the Hubble parameter $H(t)$. The coefficients of those terms, though, are different for the various cosmological epochs. For the phenomenology of our model, which is consistent with the current cosmological data, and could also help in alleviating (some of) the tensions, it suffices to consider up to and including quartic powers of $H(t)$. In the early Universe phase, it is the $H^4(t)$ term, induced by the GW condensate of the gravitational anomaly, that drives inflation without the need for external inflaton fields.