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Primordial Nucleosynthesis: Constraints on the Birth of the Universe

机译:原始核合成:对宇宙诞生的限制

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We review the basic elements of big bang nucleosythesis (BBN) and how a comparison of predicted light-element abundances with observations constrains physics of the radiation-dominated epoch. We then summarize some applications of BBN and the cosmic microwave background (CMB) to constrain the first moments of the birth of the universe. In particular, we discuss how the existence of higher dimensions impacts the cosmic expansion through the projection of curvature from the higher dimension in the "dark radiation" term. We summarize current constraints from BBN and the CMB on this brane-world dark radiation term. At the same time, the existence of extra dimensions during the earlier inflation impacts the tensor to scalar ratio and the running spectral index as measured in the CMB. We summarize how the constraints on inflation shift when embedded in higher dimensions. Finally, one expects that the universe was born out of a complicated multiverse landscape near the Planck time. In these moments the energy scale of superstrings was obtainable during the early moments of chaotic inflation. We summarize the quest for cosmological evidence of the birth of space-time out of the string theory landscape. We will explore the possibility that a superstring excitations may have made itself known via a coupling to the field of inflation. This may have left an imprint of "dips" in the power spectrum of temperature fluctuations in the cosmic microwave background. The identification of this particle as a superstring is possible because there may be evidence for different oscillator states of the same superstring that appear on different scales on the sky. It will be shown that from this imprint one can deduce the mass, number of oscillations, and coupling constant for the superstring. Although the evidence is marginal, this may constitute the first observation of a superstring in Nature.
机译:我们回顾了大爆炸核合成术(BBN)的基本元素,以及预测的光元素丰度与观测值的比较如何限制辐射主导时代的物理学。然后,我们总结了BBN和宇宙微波背景(CMB)的一些应用,以约束宇宙诞生的第一刻。特别是,我们讨论了更高维度的存在如何通过“暗辐射”术语中的更高维度通过曲率投影影响宇宙膨胀。我们总结了来自BBN和CMB的当前约束条件,该约束条件适用于大脑世界的暗辐射术语。同时,较早的通货膨胀期间额外尺寸的存在会影响张量标量比和CMB中运行的频谱指数。我们总结了嵌入较高维度时通货膨胀的约束条件如何变化。最后,人们希望宇宙诞生于普朗克时代附近一个复杂的多元宇宙景观中。在这些时刻,可以在混沌膨胀的早期获得超弦的能量尺度。我们总结了从弦论领域中寻求时空诞生的宇宙学证据。我们将探讨通过与充气场耦合而使超弦激励变得本身已知的可能性。这可能在宇宙微波背景下温度波动的功率谱中留下了“凹陷”的印记。将该粒子识别为超弦是可能的,因为可能有证据表明同一超弦的不同振荡器状态以不同的比例出现在天空中。可以看出,从这种烙印可以推断出超弦的质量,振动次数和耦合常数。尽管证据很少,但这可能构成《自然》中超弦乐的首次观察。

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