论文标题

非模产重的扩散:分析解决方案,延迟加速和宇宙学的约束

Diffusion in unimodular gravity: Analytical solutions, late-time acceleration, and cosmological constraints

论文作者

Corral, Cristóbal, Cruz, Norman, González, Esteban

论文摘要

单模型的重力是解决宇宙恒定问题的一种吸引人的方法。在这种情况下,量子场的真空能量密度不引起,宇宙常数仅作为整合常数。最近,已经表明,由于其受限的差异不变性,可能在量子重力和自发崩溃的理论中引起的能量扩散与该框架兼容。新的研究表明,这种现象可能在同质和各向同性宇宙的背景下导致高阶方程,从而影响其库奇初始价值问题的良好性。在这项工作中,我们表明,可以通过假设将能量密度与表征扩散的函数联系起来的状态方程来规避此问题。作为应用程序,我们在正压模型和质量 - 比例连续自发定位(CSL)场景中分析地求解了现场方程,假设只有暗物质会发展能量能量扩散。发现具有从减速到加速膨胀的不同溶液。我们使用IA型超新星和观察性哈勃数据的宇宙学数据来限制这两个模型的自由参数。发现很小但非平凡的能量不保守与正压模型兼容。但是,对于CSL模型,我们发现最合适的值与以前的实验室实验不兼容。我们对这个事实进行评论,并提出未来的方向,以探索宇宙学中的能量扩散。

Unimodular gravity is an appealing approach to address the cosmological constant problem. In this scenario, the vacuum energy density of quantum fields does not gravitate and the cosmological constant appears merely as an integration constant. Recently, it has been shown that energy diffusion that may arise in quantum gravity and in theories with spontaneous collapse is compatible with this framework by virtue of its restricted diffeomorphism invariance. New studies suggest that this phenomenon could lead to higher-order equations in the context of homogeneous and isotropic Universe, affecting the well-posedness of their Cauchy initial-value problem. In this work, we show that this issue can be circumvented by assuming an equation of state that relates the energy density to the function that characterizes the diffusion. As an application, we solve the field equations analytically for an isotropic and homogeneous Universes in a barotropic model and in the mass-proportional continuous spontaneous localization (CSL) scenario, assuming that only dark matter develops energy diffusion. Different solutions possessing phase transition from decelerated to accelerated expansion are found. We use cosmological data of type Ia Supernovae and observational Hubble data to constrain the free parameters of both models. It is found that very small but nontrivial energy nonconservation is compatible with the barotropic model. However, for the CSL model, we find that the best-fit values are not compatible with previous laboratory experiments. We comment on this fact and propose future directions to explore energy diffusion in cosmology.

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