论文标题

尺寸氧化宇宙中的原始黑洞

Primordial black holes in a dimensionally oxidizing Universe

论文作者

Dialektopoulos, Konstantinos F., Nicolini, Piero, Tzikas, Athanasios G.

论文摘要

在猛烈扩展的宇宙中自发创造了原始黑洞是一种经过深入研究的现象。基于量子重力论证,已经推测,早期的宇宙可能已经经历了较低的维度阶段,然后放松到当前的$(3 + 1)$尺寸状态。在本文中,我们结合了上述现象:我们通过假设尺寸的演变来计算在扩展宇宙中成核的黑洞的成对创建速率,我们将``氧化剂''从$(1 + 1)$到$(2 + 1)$,最终到$(3 + 1)$ dimensions $(1 + 1)$(1 + 1)$。我们的调查基于无边界建议,该提案允许构建所需的重力激体顿。一方面,如果存在非最低限度耦合的dilaton的存在是黑洞在$(1 + 1)$相位中存在的必要条件,则另一方面,它变得微不足道$(2 + 1)$尺寸。然而,dilaton可能会在氧化中生存,并将其纳入$(3 + 1)$尺寸的重度重力理论中:假设我们的宇宙以较低的氧化源于较低维的氧化,则可能会导致人们考虑在Horndeski Action A Sub-Class中的成对创造率。我们对该案例的发现表明,对于加里龙耦合到度量标准的特定值,速率可以不受限制。这意味着通过使用自发的黑洞创造来吸引非内斯坦重力理论的参数边界。

The spontaneous creation of primordial black holes in a violently expanding Universe is a well studied phenomenon. Based on quantum gravity arguments, it has been conjectured that the early Universe might have undergone a lower dimensional phase before relaxing to the current $(3 + 1)$ dimensional state. In this article we combine the above phenomena: we calculate the pair creation rates of black holes nucleated in an expanding Universe, by assuming a dimensional evolution, we term ``oxidation'', from $(1 + 1)$ to $(2 + 1)$ and finally to $(3 + 1)$ dimensions. Our investigation is based on the no boundary proposal that allows for the construction of the required gravitational instantons. If, on the one hand, the existence of a dilaton non-minimally coupled to the metric is necessary for black holes to exist in the $(1 + 1)$ phase, it becomes, on the other hand, trivial in $(2 + 1)$ dimensions. Nevertheless, the dilaton might survive the oxidation and be incorporated in a modified theory of gravity in $(3 + 1)$ dimensions: by assuming that our Universe, in its current state, originates from a lower-dimensional oxidation, one might be led to consider the pair creation rate in a sub-class of the Horndeski action. Our findings for this case show that, for specific values of the Galileon coupling to the metric, the rate can be unsuppressed. This would imply the possibility of compelling parameter bounds for non-Einstein theories of gravity by using the spontaneous black hole creation.

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