论文标题

如果暗物质是模糊的,则第一颗恒星形成了大型煎饼

If dark matter is fuzzy, the first stars form in massive pancakes

论文作者

Kulkarni, Mihir, Visbal, Eli, Bryan, Greg L., Li, Xinyu

论文摘要

模糊的暗物质(FDM)是针对低质量星系中小规模差异的标准冷暗物质(CDM)模型的拟议修改。由超光(质量$ \ sim 10^{ - 22} $ eV)轴与KPC-Scale de Broglie波长组成,这是一类候选者之一,可以预测以相对较大的暗物质卤素形式形成第一个折叠的对象。这意味着第一颗恒星和星系的形成历史将非常不同,可能会在此类模型上施加强大的限制。在这里,我们在数字上模拟了FDM宇宙学中第一颗恒星的形成,在代表体积中崩溃一直以下是原始的原始质体形成,包括原始的非平衡化学网络和首次冷却。我们发现了两个新的结果:首先,大规模崩溃会导致非常薄且平坦的气体“煎饼”。其次,尽管存在截然不同的宇宙学,但这种煎饼碎片直到形成与CDM中的原始物体无法区分的原始物体。结合在一起,这些结果表明,该模型中的第一代恒星也可能是巨大的,并且由于纸的形态,不要自我调节,从而导致了大量的流行III星爆。我们估计,使用简单的模型来说明来自恒星的电离反馈,在该扩展结构中形成的第一星的总数为$ 10^4 $,应与JWST观察。这些预测为FDM和类似的暗物质候选者提供了潜在的吸烟枪标志。

Fuzzy dark matter (FDM) is a proposed modification for the standard cold dark matter (CDM) model motivated by small-scale discrepancies in low-mass galaxies. Composed of ultra-light (mass $\sim 10^{-22}$ eV) axions with kpc-scale de Broglie wavelengths, this is one of a class of candidates that predicts that the first collapsed objects form in relatively massive dark matter halos. This implies that the formation history of the first stars and galaxies would be very different, potentially placing strong constraints on such models. Here we numerically simulate the formation of the first stars in an FDM cosmology, following the collapse in a representative volume all the way down to primordial protostar formation including a primordial non-equilibrium chemical network and cooling for the first time. We find two novel results: first, the large-scale collapse results in a very thin and flat gas "pancake"; second, despite the very different cosmology, this pancake fragments until it forms protostellar objects indistinguishable from those in CDM. Combined, these results indicate that the first generation of stars in this model are also likely to be massive and, because of the sheet morphology, do not self-regulate, resulting in a massive Pop III starburst. We estimate the total number of first stars forming in this extended structure to be $10^4$ over 20 Myr using a simple model to account for the ionizing feedback from the stars, and should be observable with JWST. These predictions provide a potential smoking gun signature of FDM and similar dark matter candidates.

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