论文标题
宇宙的破坏:原始功率谱和非高斯
Cosmic decoherence: primordial power spectra and non-Gaussianities
论文作者
论文摘要
我们研究量子反应对通货膨胀宇宙学扰动的影响。该过程可能会刻画特定的观察性特征,以揭示通货膨胀机制的量子性质与通货膨胀波动的量子到经典过渡的长期问题有关。几项作品研究了量子反应对原始波动的统计特性的影响。特别是,已经表明,宇宙的破坏性会导致校正标准缓慢膨胀预测的曲率功率谱。同样有趣的是,非零曲率的三光谱已被证明是纯粹是由宇宙腐蚀引起的,但令人惊讶的是,腐烂似乎并没有产生任何双光谱。我们通过采用可观察到的指针的广义形式进一步开发了这种分析,这表明腐蚀性确实会诱导非消失的曲率双光谱并提供特定的潜在混凝土物理过程。对原始双百形的当前限制允许对环境系统相互作用的强度产生上限。在完全的一般性中,如果人们对与比例无关的功率谱对相应的校正进行相应的校正。这种对最大宇宙学量表的量表依赖性可能代表了通货膨胀期间发生的量子偏压过程的独特烙印。我们还提供了一个标准,该标准可以理解何时宇宙的矫正何时诱导比例独立校正,而与所考虑的环境类型无关。作为最终结果,我们研究了宇宙破裂对张量扰动的影响,并得出了校正的张量张量与量表的扰动比。在特定情况下,反应诱导了对标准张量功率谱的蓝色倾斜校正。
We study the effect of quantum decoherence on the inflationary cosmological perturbations. This process might imprint specific observational signatures revealing the quantum nature of the inflationary mechanism being related to the longstanding issue of the quantum-to-classical transition of inflationary fluctuations. Several works have investigated the effect of quantum decoherence on the statistical properties of primordial fluctuations. In particular, it has been shown that cosmic decoherence leads to corrections to the curvature power spectrum predicted by standard slow-roll inflation. Equally interesting, a non zero curvature trispectrum has been shown to be purely induced by cosmic decoherence, but surprisingly, decoherence seems not to generate any bispectrum. We further develop such an analysis by adopting a generalized form of the pointer observable, showing that decoherence does induce a non vanishing curvature bispectrum and providing a specific underlying concrete physical process. Present constraints on primordial bispectra allow to put an upper bound on the strength of the environment-system interaction. In full generality, the decoherence-induced bispectrum can be scale dependent provided one imposes the corresponding correction to the power spectrum to be scale independent. Such scale dependence on the largest cosmological scales might represent a distinctive imprint of the quantum decoherence process taking place during inflation. We also provide a criterion that allows to understand when cosmic decoherence induces scale independent corrections, independently of the type of environment considered. As a final result, we study the effect of cosmic decoherence on tensor perturbations and we derive the decoherence corrected tensor-to-scalar perturbation ratio. In specific cases, decoherence induces a blue tilted correction to the standard tensor power spectrum.