论文标题

宇宙的化学演化及其对重力波天体物理学的后果

Chemical evolution of the Universe and its consequences for gravitational-wave astrophysics

论文作者

Chruślińska, Martyna

论文摘要

现在,我们通常通过合并黑洞和中子星排出的引力波(GW)。这些是在整个宇宙中形成的巨大恒星的来世 - 在不同的时间且具有不同的金属性(比氦气重的元素的丰度)。出生金属性在巨大恒星的进化中起着重要作用。因此,合并的总体特性对金属依赖性宇宙星形成历史(f $ _ {\ rm sfr} $(z,z,z))。特别是,在孤立的地层场景(本文的重点)中,发现了涉及黑洞的合并形成的强烈低金属性偏好。讨论了这种依赖的起源及其后果。最重要的是,f $ _ {\ rm sfr} $(z,z)中的不确定性(即使在低红移,尤其是在低金属性下)也不能忽略,并且使当前GW观测值的解释具有挑战性。考虑了源泉的可能路径和未来GW探测器的作用。确定f $ _ {\ rm sfr} $(z,z)的最新努力以及主导其不确定性的因素。这些因素中的许多因素与微弱且遥远且因此难以观察的星系的特性有关。他们在宇宙时间的合并特性上留下了烙印,这使得未来的GW观察成为研究星系化学演化的有前途的(并补充电磁观测)工具。

We are now routinely detecting gravitational waves (GW) emitted by merging black holes and neutron stars. Those are the afterlives of massive stars that formed all across the Universe - at different times and with different metallicities (abundances of elements heavier than helium). Birth metallicity plays an important role in the evolution of massive stars. Consequently, the population properties of mergers are sensitive to the metallicity dependent cosmic star formation history (f$_{\rm SFR}$(Z,z)). In particular, within the isolated formation scenarios (the focus of this paper), a strong low metallicity preference of the formation of mergers involving black holes was found. The origin of this dependence and its consequences are discussed. Most importantly, uncertainty in the f$_{\rm SFR}$(Z,z) (substantial even at low redshifts, especially at low metallicity) cannot be ignored in the models and makes the interpretation of current GW observations challenging. Possible paths for imporvements and the role of future GW detectors are considered. Recent efforts to determine f$_{\rm SFR}$(Z,z) and the factors that dominate its uncertainty are summarized. Many of those factors are related to the properties of galaxies that are faint and distant and therefore difficult to observe. The fact that they leave imprint on the properties of mergers as a function of cosmic time makes future GW observations a promising (and complementary to electromagnetic observations) tool to study chemical evolution of galaxies.

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