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Black holes, gravitational waves and fundamental physics: a roadmap

Classical and Quantum Gravity · 2019 · Vol. 36(14) · pp. 143001–143001
Abbas AskarChris BelczynskiGianfranco BertoneEdi BonDiego BlasRichard BritoTomasz BulikClare BurrageChristian T ByrnesChiara CapriniMasha ChernyakovaPiotr ChruścielMonica ColpiValeria FerrariDaniele GaggeroJonathan GairJuan García-BellidoS F HassanLavinia HeisenbergMartin HendryIk Siong HengCarlos HerdeiroTanja HindererAssaf HoreshBradley J KavanaghBence KocsisMichael KramerAlexandre Le TiecChiara MingarelliGermano NardiniGijs NelemansCarlos PalenzuelaPaolo PaniAlbino PeregoEdward K PorterElena M RossiPatricia SchmidtAlberto SesanaUlrich SperhakeAntonio StamerraLeo C SteinNicola TamaniniThomas M TaurisL Arturo Urena-LópezFrederic VincentMarta VolonteriBarry WardellNorbert WexKent YagiTiziano AbdelsalhinMiguel Ángel AloyPau Amaro-SeoaneLorenzo AnnulliManuel Arca-SeddaIbrahima BahEnrico BarausseElvis BarakovicRobert BenkelCharles L BennettLaura BernardSebastiano BernuzziChristopher P L BerryEmanuele BertiMiguel BezaresJose Juan Blanco-PilladoJose Luis Blázquez-SalcedoMatteo BonettiMateja BoškovićZeljka BosnjakKatja BricmanBernd BrügmannPedro R CapeloSante CarloniPablo Cerdá-DuránChristos CharmousisSylvain ChatyAurora ClericiAndrew CoatesMarta ColleoniLucas G CollodelGeoffrey CompèreWilliam CookIsabel Cordero-CarriónMiguel CorreiaÁlvaro de la Cruz-DombrizViktor G CzinnerKyriakos DestounisKostas DialektopoulosDaniela DonevaMassimo DottiAmelia DrewChristopher EcknerJames EdholmRoberto EmparanRecai ErdemMiguel FerreiraPedro G FerreiraAndrew FinchJose A FontNicola FranchiniKwinten FransenDmitry Gal’tsovApratim GangulyDavide GerosaKostas GlampedakisAndreja GombocAriel GoobarLeonardo GualtieriEduardo GuendelmanFrancesco HaardtTroels HarmarkFilip HejdaThomas HertogSeth HopperSascha HusaNada IhanecTaishi IkedaAmruta JaodandPhilippe JetzerXisco Jimenez-FortezaMarc KamionkowskiDavid E KaplanStelios KazantzidisMasashi KimuraShiho KobayashiKostas KokkotasJulian KrolikJutta KunzClaus LämmerzahlPaul LaskyJosé P S LemosJackson Levi SaidStefano LiberatiJorge LopesRaimon LunaYin-Zhe MaElisa MaggioAlberto MangiagliMarina Martinez MonteroAndrea MaselliLucio MayerAnupam MazumdarChristopher MessengerBrice MénardMasato MinamitsujiChristopher J MooreDavid MotaSourabh NampalliwarAndrea NerozziDavid NicholsEmil NissimovMartin ObergaulingerNiels A ObersRoberto OliveriGeorge PappasVedad PasicHiranya PeirisTanja PetrushevskaDenis PollneyGeraint PrattenNemanja RakicIstvan RaczMiren RadiaFethi M RamazanoğluAntoni Ramos-BuadesGuilherme RaposoMarek RogatkoRoxana Rosca-MeadDorota RosinskaStephan RosswogEster Ruiz-MoralesMairi SakellariadouNicolás Sanchis-GualOm Sharan SalafiaAnuradha SamajdarAlicia SintesMajda SmoleCarlos SopuertaRafael Souza-LimaMarko StalevskiNikolaos StergioulasChris StevensTomas TamfalAlejandro Torres-FornéSergey TsygankovKıvanç İ ÜnlütürkRosa ValianteMaarten van de MeentJosé VelhinhoYosef VerbinBert VercnockeDaniele VernieriRodrigo VicenteVincenzo VitaglianoAmanda WeltmanBernard WhitingAndrew WilliamsonHelvi WitekAneta WojnarKadri YakutHaopeng YanStoycho YazadjievGabrijela ZaharijasMiguel Zilhão

Abstract

Abstract The grand challenges of contemporary fundamental physics—dark matter, dark energy, vacuum energy, inflation and early universe cosmology, singularities and the hierarchy problem—all involve gravity as a key component. And of all gravitational phenomena, black holes stand out in their elegant simplicity, while harbouring some of the most remarkable predictions of General Relativity: event horizons, singularities and ergoregions. The hitherto invisible landscape of the gravitational Universe is being unveiled before our eyes: the historical direct detection of gravitational waves by the LIGO-Virgo collaboration marks the dawn of a new era of scientific exploration. Gravitational-wave astronomy will allow us to test models of black hole formation, growth and evolution, as well as models of gravitational-wave generation and propagation. It will provide evidence for event horizons and ergoregions, test the theory of General Relativity itself, and may reveal the existence of new fundamental fields. The synthesis of these results has the potential to radically reshape our understanding of the cosmos and of the laws of Nature. The purpose of this work is to present a concise, yet comprehensive overview of the state of the art in the relevant fields of research, summarize important open problems, and lay out a roadmap for future progress. This write-up is an initiative taken within the framework of the European Action on ‘Black holes, Gravitational waves and Fundamental Physics’.

Cosmology and Gravitation TheoriesRelativity and Gravitational TheoryPulsars and Gravitational Waves ResearchGeneral relativityGravitational waveGravitationGravitational-wave observatoryGravitational singularityEvent (particle physics)UniverseBlack hole (networking)Cosmology

Funding

  • National Science Foundation
  • Smithsonian Institution
  • National Aeronautics and Space Administration
  • Strong
  • Flatiron Health
  • European Commission
  • Deutscher Akademischer Austauschdienst
  • Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung
  • Partnership for Advanced Computing in Europe AISBL
  • Austrian Science Fund
  • Generalitat Valenciana
  • Javna Agencija za Raziskovalno Dejavnost RS
  • Türkiye Bilimsel ve Teknolojik Araştırma Kurumu
  • Ministerio de Asuntos Económicos y Transformación Digital, Gobierno de España
  • Nemzeti Kutatási Fejlesztési és Innovációs Hivatal
  • Govern de les Illes Balears
  • Smithsonian Astrophysical Observatory
  • Horizon 2020 Framework Programme
  • Engineering and Physical Sciences Research Council
  • Science and Technology Facilities Council
  • European Regional Development Fund
  • Agencia Estatal de Investigación
Citations
718
FWCI
58.17
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References
1,700
Percentile
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Citations per year
References
Degenerate higher derivative theories beyond Horndeski: evading the Ostrogradski instability
Journal of Cosmology and Astroparticle Physics · 2016 · 558 citations
Radiation damping in a gravitational field
Annals of Physics · 1960 · 749 citations
Scientific objectives of Einstein Telescope
Classical and Quantum Gravity · 2012 · 524 citations
Note on the Kerr Spinning-Particle Metric
Journal of Mathematical Physics · 1965 · 857 citations
Multipole moments of stationary space-times
Journal of Mathematical Physics · 1974 · 571 citations
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