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Dark matter, dark energy, gravitational lensing and the formation of structure in the universe [Review]

机译:暗物质,暗能量,引力透镜和宇宙结构的形成[综述]

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The large-scale structure of the universe and its statistical-properties can reveal many aspects of the physics of the early universe as well as of its matter. content during the cosmic history. Numerous observations, based to a large extent on large scale structure data, have given us a concordant picture of the energy and matter content in the universe.. In view of these results the existence of dark matter has been firmly established although it still evades attempts at direct detection. An even more challenging puzzle is, however, yet to be explained. Indeed the model suggested-by the observations is only viable with the presence of a 'dark energy', an ethereal energy associated with the cosmological vacuum, that would represent about two-thirds of the total energy density of the universe. Although strongly indicated by observations, the existence of this component is nonetheless very uncomfortable from a high-energy physics point of view. Its interpretation is a matter of far reaching debates. Indeed, the phenomenological manifestation of this component can be viewed as a geometrical property of large-scale gravity, or as the energy associated with the quantum field vacuum, or else as the manifestation of a new sort of cosmic fluid that would fill space and remain unclustered. Low redshift detailed examinations of the geometrical or clustering properties of the universe should in all cases.' help clarify the true nature of the dark energy. We present methods that can be used in the future for exploring the low, redshift physical properties of the universe. Particular emphasis will be placed on the use of large-scale structure surveys and more specifically on weak lensing surveys that promise to be extremely powerful in exploring the large-scale mass,distribution in the universe. [References: 112]
机译:宇宙的大规模结构及其统计特性可以揭示早期宇宙及其物质的许多方面。宇宙历史中的内容。在很大程度上基于大规模结构数据的众多观察结果,使我们对宇宙中的能量和物质含量有了一致的认识。鉴于这些结果,暗物质的存在已得到牢固确立,尽管它仍在逃避尝试。直接检测。但是,还有一个更具挑战性的难题尚待解释。实际上,由观测结果提出的模型只有在存在“暗能量”时才可行,“暗能量”是与宇宙真空相关的一种空虚能量,约占宇宙总能量密度的三分之二。尽管从观察中可以明显看出,但是从高能物理学的角度来看,该成分的存在还是非常令人不适的。它的解释是一个深远的辩论问题。确实,该成分的现象学表现可以被视为大规模重力的几何特性,或者被视为与量子场真空相关的能量,或者被视为一种新型的宇宙流体的表现,它将充满空间并保留无集群。在所有情况下,都应对宇宙的几何或聚类特性进行低度的红移详细检查。帮助阐明暗能量的真实本质。我们提出了可用于将来探索宇宙低位,红移物理性质的方法。将特别强调使用大型结构勘测,更具体地说,将使用弱镜头勘测,这些勘测有望在探索宇宙中的大规模质量分布方面极为强大。 [参考:112]

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