论文标题

Kilonovae跨越核物理景观:核物理不确定性对R过程的影响

Kilonovae across the nuclear physics landscape: The impact of nuclear physics uncertainties on r-process-powered emission

论文作者

Barnes, Jennifer, Zhu, Y. L., Lund, K. A., Sprouse, T. M., Vassh, N., McLaughlin, G. C., Mumpower, M. R., Surman, R.

论文摘要

合并的中子星星产生“ Kilonovae” ---电磁瞬变,这些瞬态是由通过快速中子捕获(R-Process)在灵感和合并期间重力不绑定的材料中的快速中子捕获(R-process)腐烂的。 Kilonova发射(如果正确解释)可以用来表征合并驱动的流出的质量和组成,从而帮助解决了有关宇宙中R过程的起源的长期辩论。我们探讨了参与R过程中核的不确定特性如何使Kilonova观测值的流出特性的推断变得复杂。使用R过程模拟,我们展示了核物理不确定性如何影响放射性加热和元素合成的预测。对于一组在预测的加热和最终丰度中范围很大的模型,我们对具有固定质量和密度曲线的Kilonova弹射器进行了衰减产物热化和辐射传输的详细数值计算。与我们的模型相关的光曲线在其亮度方面表现出巨大的多样性,峰亮度的变化不仅仅是一个数量级。我们还发现Kilonova光曲线及其颜色的形状可变性,在某些情况下,这与预期的兰烷化和/或actinide富集水平的提高将与更长,昏暗的,红色的发射相关。

Merging neutron stars produce "kilonovae"---electromagnetic transients powered by the decay of unstable nuclei synthesized via rapid neutron capture (the r-process) in material that is gravitationally unbound during inspiral and coalescence. Kilonova emission, if accurately interpreted, can be used to characterize the masses and compositions of merger-driven outflows, helping to resolve a long-standing debate about the origins of r-process material in the Universe. We explore how the uncertain properties of nuclei involved in the r-process complicate the inference of outflow properties from kilonova observations. Using r-process simulations, we show how nuclear physics uncertainties impact predictions of radioactive heating and element synthesis. For a set of models that span a large range in both predicted heating and final abundances, we carry out detailed numerical calculations of decay product thermalization and radiation transport in a kilonova ejecta with a fixed mass and density profile. The light curves associated with our models exhibit great diversity in their luminosities, with peak brightness varying by more than an order of magnitude. We also find variability in the shape of the kilonova light curves and their color, which in some cases runs counter to the expectation that increasing levels of lanthanide and/or actinide enrichment will be correlated with longer, dimmer, redder emission.

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