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2026 年 5 月 9 日 星期六 · 数据截至 arXiv / ADS 最新收录日

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今日头条

No Breaking · 无突发
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当日 1 篇核心与相关文献均为常规推进,核心 1 篇已按优先级列于下方。

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核心文献

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优先级 80 · 引力波电磁对应体 · 多信使触发与联合 · 宇宙学与基础物理应用

Gravitational-wave Standard Sirens and Application in Cosmology

引力波标准汽笛及其宇宙学应用

Wen Zhao (Department of Astronomy, University of Science and Technology of China), Liang-Gui Zhu (Department of Astronomy, University of Science and Technology of China), Youjun Lu (School of Astronomy and Space Science, University of Chinese Academy of Sciences; National Astronomical Observatories, Chinese Academy of Sciences)

原文摘要Abstract

The discovery of the gravitational-wave event GW170817 from a binary neutron star merger, together with its multi-wavelength electromagnetic counterparts, marks the beginning of the era of multi-messenger gravitational-wave astronomy. Observations of gravitational-wave signals from compact binary mergers enable an independent measurement of the luminosity distance to the source. This implies that gravitational-wave sources can serve as "standard sirens" to probe the expansion history of the Universe, providing a new approach to constrain cosmological parameters. In this paper, we review the basic principles of using gravitational-wave standard sirens to constrain cosmology. We discuss various methods for determining the source distance and redshift, as well as the capabilities of second- and third-generation ground-based detectors and space-based detectors in constraining cosmological parameters, especially the Hubble constant and dark energy parameters. By examining three types of standard sirens—binary neutron star mergers with electromagnetic counterparts as bright sirens, stellar-mass binary black hole mergers as dark sirens, and the dark lensed sirens—we illustrate the methodology, challenges, and future prospects of the standard siren approach.

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AI 综述 AI-generated · 以原文为准
亮点

系统梳理了七种红移测定方法及三类标准汽笛(亮、暗、透镜暗汽笛),全面比较了多代探测器的宇宙学约束能力,为解决哈勃冲突和暗能量演化提供了清晰的路线图。

脉络与展望

标准汽笛方法通过 GW170817 的联合观测首次得到验证 Abbott+ 2017c。随后,多种红移测定方法被提出,如强透镜时间延迟 Liao+ 2017、潮汐效应 Messenger+ 2012 和源红移分布 Ding+ 2019。当前受限于事件数量,约束精度有限;但未来第三代探测器(如 ET Punturo+ 2010、CE Abbott+ 2017a)和空间探测器将提供海量标准汽笛,结合多波段协同观测与谱汽笛技术,哈勃常数和暗能量参数约束有望达到亚百分级,为解决 Hubble 张力 Riess+ 2022 和探索暗能量演化提供独立途径。

预印本 2026-05-09 · 接收 2026-06-15 · 刊出 2026-07-15 · 收录 2026-07-22

边缘相关 1 篇 · 低相关性展开 +
优先级 30 · 高能暂现天体:TDE、X/γ 射线暂现、新星/超新星激波08-21 补录

SN 2021pfs: A Type Ia Supernova Likely Affected by Progenitor Metallicity, as Revealed by Comparison with Its Twin Counterpart

Abdusamatjan Iskandar, Xiaofeng Wang, Ali Esamdin, et al.

原文摘要Abstract

We present extensive photometric and spectroscopic observations of the normal type Ia supernovae (SNe Ia) 2021pfs, which occurred in the Seyfert 2 galaxy NGC 5427 at a redshift 0.009. SN 2021pfs reached an absolute \textit{B}-band peak magnitude of $M_{\rm max}(B)=$-19.28 $\pm$ 0.40 mag. The mag and a post-peak decline rate of $Δm_{15}(B)=$1.13 $\pm$ 0.06 mag. The observed properties of this nearby SN Ia closely resemble those of SN 2011fe, including the main optical spectroscopic features and photometric evolution. Despite their similar decline rates, SN 2021pfs rose more rapidly in the $U$ band but more slowly in the $r$ and $i$ bands compared to SN 2011fe in very early phases. This photometric difference, particularly at short wavelengths, can introduce a systematic uncertainty of up to $\sim$12% in distance estimates. Analysis of the host galaxy's local and global environment shows an environment consistent with producing a higher-metallicity progenitor for SN 2021pfs than that of SN 2011fe.This higher progenitor metallicity may explain the observed photometric discrepancy and the resulting distance between SN 2021pfs and SN 2011fe, though a larger sample of such "twin" SNe Ia is needed to confirm this trend and assess its impact on cosmological measurements.

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SN 2021pfs:通过与孪生对应体比较揭示可能受前身星金属丰度影响的Ia型超新星 · 本文观测了正常Ia型超新星SN 2021pfs,发现其与SN 2011fe相似但早期光变有差异,推测由更高前身星金属丰度导致,并可能引入约12%的距离测量系统误差。

预印本 2026-08-20 · 接收 2026-05-09 · 刊出 2026-07-27 · 收录 2026-08-21