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Cosmological density perturbations in a conformal scalar field theory

机译:共形标量场理论中的宇宙密度扰动

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We consider a scenario in which primordial scalar perturbations are generated when a complex conformal scalar field rolls down its negative quartic potential. Initially, these are perturbations of the phase of this field, which are then converted into adiabatic perturbations of the density. The existence of perturbations in the radial field direction, which have a red power spectrum, is a potentially dangerous feature of this scenario. But we show that in the linear order in the small parameter, the self-coupling, the infrared effects are completely nullified by an appropriate field redefinition. We evaluate the statistical anisotropy inherent in the model because of the presence of the long-wave perturbations of the radial field component. In the linear order in the self-coupling, the infrared effects do not affect the statistical anisotropy. They are manifested only at the quadratic order in the self-coupling, weakly (logarithmically) enhancing the corresponding contribution to the statistical anisotropy. The resulting statistical anisotropy is a combination of a large term, which decreases as the momentum increases, and a momentum-independent nonamplified term.
机译:我们考虑了一个场景,其中当复杂的共形标量场向下滚动其负四次势时会生成原始标量扰动。最初,这些是该场相位的扰动,然后将其转换为密度的绝热扰动。在径向场方向上存在具有红色功率谱的扰动,是这种情况的潜在危险特征。但是我们表明,在小参数(自耦合)的线性顺序中,通过适当的场重新定义,红外效应完全消失了。由于存在径向场分量的长波扰动,我们评估了模型固有的统计各向异性。在自耦合的线性顺序中,红外效应不会影响统计各向异性。它们仅在自耦合中以二次顺序出现,弱(对数地)增强了对统计各向异性的相应贡献。所得的统计各向异性是一个较大的项(随动量增加而减小)和一个与动量无关的非放大项的组合。

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