新宇宙学中的大爆炸核合成

B. Fields
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引用次数: 3

摘要

摘要大爆炸核合成(BBN)描述了在宇宙时间的最初几分钟内最轻元素的产生。我们回顾了宇宙元素产生的物理学,以及对原始元素丰度的观测。迄今为止,理论和观测之间的比较提供了我们对宇宙的最早探测,并给出了对宇宙重子含量的最佳测量。然而,鉴于对宇宙微波背景(CMB)的新的精确测量,BBN现在在宇宙学中扮演了新的角色。最近的宇宙微波背景各向异性数据提供了丰富的宇宙学参数;其中重子光子比η = nB/nγ的测量精度较高。BBN和CMB“重力计”之间的对抗对标准宇宙学提出了新的严格考验;讨论了该试验的现状。此外,现在有可能通过使用CMB来确定重子密度甚至一些轻元素丰度来重塑BBN的作用。这一策略使BBN成为对早期宇宙物理和星系核合成过程更有力的探测。说明了CMB结果对超出标准模型的粒子物理学和非标准宇宙学的影响。讨论了通过额外的天文观测和核实验改善这些界限的前景,以及挥之不去的“锂问题”。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Big bang nucleosynthesis in the new cosmology
Abstract.Big bang nucleosynthesis (BBN) describes the production of the lightest elements in the first minutes of cosmic time. We review the physics of cosmological element production, and the observations of the primordial element abundances. The comparison between theory and observation has heretofore provided our earliest probe of the universe, and given the best measure of the cosmic baryon content. However, BBN has now taken a new role in cosmology, in light of new precision measurements of the cosmic microwave background (CMB). Recent CMB anisotropy data yield a wealth of cosmological parameters; in particular, the baryon-to-photon ratio η = nB/nγ is measured to high precision. The confrontation between the BBN and CMB “baryometers” poses a new and stringent test of the standard cosmology; the status of this test is discussed. Moreover, it is now possible to recast the role of BBN by using the CMB to fix the baryon density and even some light element abundances. This strategy sharpens BBN into a more powerful probe of early universe physics, and of galactic nucleosynthesis processes. The impact of the CMB results on particle physics beyond the Standard Model, and on non-standard cosmology, are illustrated. Prospects for improvement of these bounds via additional astronomical observations and nuclear experiments are discussed, as is the lingering “lithium problem.”
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