期刊论文详细信息
Living Reviews in Relativity
Kilonovae
article
Metzger, Brian D.1 
[1] Department of Physics, Columbia Astrophysics Laboratory, Columbia University;Center for Computational Astrophysics, Flatiron Institute
关键词: Gravitational waves;    Neutron stars;    Nucleosynthesis;    Black holes;    Radiative transfer;   
DOI  :  10.1007/s41114-019-0024-0
学科分类:医学(综合)
来源: Living Reviews
PDF
【 摘 要 】

The coalescence of double neutron star (NS–NS) and black hole (BH)–NS binaries are prime sources of gravitational waves (GW) for Advanced LIGO/Virgo and future ground-based detectors. Neutron-rich matter released from such events undergoes rapid neutron capture (r-process) nucleosynthesis as it decompresses into space, enriching our universe with rare heavy elements like gold and platinum. Radioactive decay of these unstable nuclei powers a rapidly evolving, approximately isotropic thermal transient known as a “kilonova”, which probes the physical conditions during the merger and its aftermath. Here I review the history and physics of kilonovae, leading to the current paradigm of day-timescale emission at optical wavelengths from lanthanide-free components of the ejecta, followed by week-long emission with a spectral peak in the near-infrared (NIR). These theoretical predictions, as compiled in the original version of this review, were largely confirmed by the transient optical/NIR counterpart discovered to the first NS–NS merger, GW170817, discovered by LIGO/Virgo. Using a simple light curve model to illustrate the essential physical processes and their application to GW170817, I then introduce important variations about the standard picture which may be observable in future mergers. These include $$\sim $$ ∼ hour-long UV precursor emission, powered by the decay of free neutrons in the outermost ejecta layers or shock-heating of the ejecta by a delayed ultra-relativistic outflow; and enhancement of the luminosity from a long-lived central engine, such as an accreting BH or millisecond magnetar. Joint GW and kilonova observations of GW170817 and future events provide a new avenue to constrain the astrophysical origin of the r-process elements and the equation of state of dense nuclear matter.

【 授权许可】

CC BY   

【 预 览 】
附件列表
Files Size Format View
RO202108090002281ZK.pdf 5639KB PDF download
  文献评价指标  
  下载次数:15次 浏览次数:2次