The astrophysics of nanohertz gravitational waves

被引:1
|
作者
Sarah Burke-Spolaor
Stephen R. Taylor
Maria Charisi
Timothy Dolch
Jeffrey S. Hazboun
A. Miguel Holgado
Luke Zoltan Kelley
T. Joseph W. Lazio
Dustin R. Madison
Natasha McMann
Chiara M. F. Mingarelli
Alexander Rasskazov
Xavier Siemens
Joseph J. Simon
Tristan L. Smith
机构
[1] West Virginia University,Department of Physics and Astronomy
[2] West Virginia University,Center for Gravitational Waves and Cosmology
[3] Canadian Institute for Advanced Research,Department of Physics
[4] CIFAR Azrieli Global Scholar,Physical Sciences Division
[5] TAPIR,Department of Astronomy and National Center for Supercomputing Applications
[6] California Institute of Technology,Department of Physics and Astronomy and CIERA
[7] Jet Propulsion Laboratory,Jet Propulsion Laboratory
[8] Hillsdale College,Department of Life and Physical Sciences
[9] University of Washington Bothell,Department of Physics and Astronomy
[10] University of Illinois at Urbana-Champaign,Center for Computational Astrophysics
[11] Harvard–Smithsonian Center for Astrophysics,Department of Physics, Center for Gravitation, Cosmology and Astrophysics
[12] Northwestern University,Department of Physics and Astronomy
[13] California Institute of Technology,undefined
[14] The National Radio Astronomy Observatory,undefined
[15] Fisk University,undefined
[16] Vanderbilt University,undefined
[17] Flatiron Institute,undefined
[18] Eötvös University,undefined
[19] Institute of Physics,undefined
[20] University of Wisconsin-Milwaukee,undefined
[21] Swarthmore College,undefined
来源
关键词
Gravitational waves; Stars; Neutron; Galaxies; Evolution; Black hole physics; Cosmology; Miscellaneous;
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摘要
Pulsar timing array (PTA) collaborations in North America, Australia, and Europe, have been exploiting the exquisite timing precision of millisecond pulsars over decades of observations to search for correlated timing deviations induced by gravitational waves (GWs). PTAs are sensitive to the frequency band ranging just below 1 nanohertz to a few tens of microhertz. The discovery space of this band is potentially rich with populations of inspiraling supermassive black hole binaries, decaying cosmic string networks, relic post-inflation GWs, and even non-GW imprints of axionic dark matter. This article aims to provide an understanding of the exciting open science questions in cosmology, galaxy evolution, and fundamental physics that will be addressed by the detection and study of GWs through PTAs. The focus of the article is on providing an understanding of the mechanisms by which PTAs can address specific questions in these fields, and to outline some of the subtleties and difficulties in each case. The material included is weighted most heavily toward the questions which we expect will be answered in the near-term with PTAs; however, we have made efforts to include most currently anticipated applications of nanohertz GWs.
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