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The Electromagnetic Counterpart of the Binary Neutron Star Merger LIGO/Virgo GW170817. II. UV, Optical, and Near-infrared Light Curves and Comparison to Kilonova Models

The Astrophysical Journal Letters · 2017 · Vol. 848(2) · pp. L17–L17
P. S. CowperthwaiteE. BergerV. Ashley VillarBrian D. MetzgerM. NichollR. ChornockP. K. BlanchardWen‐fai FongR. MarguttiM. Soares-SantosK. D. AlexanderS. AllamJ. AnnisDillon BroutD. BrownRobert E. ButlerH.-Y. ChenH. T. DiehlZ. DoctorM. R. DroutTarraneh EftekhariB. FarrD. A. FinleyR. J. FoleyJ. FriemanChris L. FryerJ. García-BellidoM. S. S. GillJames GuillochonK. HernerD. E. HolzDaniel KasenR. KeßlerJ. MarrinerT. MathesonEric H. NeilsenEliot QuataertA. PalmeseA. RestM. SakoD. ScolnicNathan SmithD. L. TuckerPaul WilliamsE. BalbinotJeffrey L. CarlinErika CookF. DurretT. S. LiP. A. A. LopesA. C. C. LourençoJ. L. MarshallG. E. MedinaJ. MuirRobyn L. MunozM. SausedaDavid J. SchlegelL. F. SeccoA. K. VivasW. C. WesterA. ZentenoYun-Hao ZhangT. M. C. AbbottM. BanerjiK. BechtolA. Benoit-LévyE. BertinE. Buckley‐GeerD. L. BurkeD. CapozziA. Carnero RosellM. Carrasco KindF. J. CastanderM. CrocceCarlos E. CunhaC. B. D’AndreaL. da CostaC. DavisD. L. DePoyS. DesaiJ. P. DietrichA. Drlica-WagnerT. F. EiflerA. E. EvrardElizabeth R. FernandezB. FlaugherP. FosalbaE. GaztañagaD. W. GerdesT. GiannantonioD. A. GoldsteinD. GruenR. A. GruendlG. GutiérrezK. HonscheidB. JainD J JamesT. JeltemaM. W. G. JohnsonM. D. JohnsonS. KentE. KrauseRichard G. KronK. KuehnN. NuropatkinO. LahavM. LimaH. LinM. A. G. MaiaM. MarchPaul MartiniR. G. McMahonF. MenanteauCarol J. MillerR. MiquelJ. J. MohrE. NeilsenRobert C. NicholR. L. C. OgandoA. A. PlazasN. RoeA. K. RomerA. RoodmanE. S. RykoffE. SánchezV. ScarpineR. SchindlerM SchubnellI. Sevilla-NoarbeM. SmithR. C. SmithF. SobreiraE. SuchytaM. E. C. SwansonG. TarléD. ThomasR. C. ThomasM. A. TroxelV. VikramA. R. WalkerRisa H. WechslerJ. WellerB. YannyJ. Zuntz

Abstract

We present UV, optical, and near-infrared (NIR) photometry of the first electromagnetic counterpart to a gravitational wave source from Advanced Laser Interferometer Gravitational-wave Observatory (LIGO)/Virgo, the binary neutron star merger GW170817. Our data set extends from the discovery of the optical counterpart at 0.47–18.5 days post-merger, and includes observations with the Dark Energy Camera (DECam), Gemini-South/FLAMINGOS-2 (GS/F2), and the Hubble Space Telescope(HST). The spectral energy distribution (SED) inferred from this photometry at 0.6 days is well described by a blackbody model with T ≈ 8300 K, a radius of R ≈ 4.5 x 10^(14) cm (corresponding to an expansion velocity of ν ≈ 0.3c), and a bolometric luminosity of L_(bol) ≈ 5 x 10^(41) erg s^(−1). At 1.5 days we find a multi-component SED across the optical and NIR, and subsequently we observe rapid fading in the UV and blue optical bands and significant reddening of the optical/NIR colors. Modeling the entire data set, we find that models with heating from radioactive decay of ^(56)Ni, or those with only a single component of opacity from r-process elements, fail to capture the rapid optical decline and red optical/NIR colors. Instead, models with two components consistent with lanthanide-poor and lanthanide-rich ejecta provide a good fit to the data; the resulting "blue" component has M^(blue)_(ej) ≈ 0.01 M⊙ and ν^(blue)_(ej) ≈ 0.3 c, and the "red" component has M^(red)_(ej) ≈ 0.04 M⊙ and ν^(red)_(ej) ≈ 0.1 c. These ejecta masses are broadly consistent with the estimated r-process production rate required to explain the Milky Way r-process abundances, providing the first evidence that binary neutron star (BNS) mergers can be a dominant site of r-process enrichment.

Pulsars and Gravitational Waves ResearchGamma-ray bursts and supernovaeAstrophysical Phenomena and ObservationsPhysicsKilonovaAstrophysicsNeutron starLIGOPhotometry (optics)Light curveSpectral energy distributionGravitational waveAstronomy

Funding

  • National Science Foundation
  • U.S. Department of Energy
  • National Aeronautics and Space Administration
  • Alfred P. Sloan Foundation
  • Gordon and Betty Moore Foundation
  • University of California, Santa Cruz
  • University of Pennsylvania
  • Ohio State University
  • University of Portsmouth
  • National Centre for Supercomputing Applications
  • University College London
  • University of Sussex
  • National Research Foundation
  • Deutsche Forschungsgemeinschaft
  • Danmarks Grundforskningsfond
  • Eidgenössische Technische Hochschule Zürich
  • Ministerio de Ciencia, Tecnología e Innovación Productiva
  • Ministério da Ciência, Tecnologia e Inovação
  • Conselho Nacional de Desenvolvimento Científico e Tecnológico
  • Fundação Carlos Chagas Filho de Amparo à Pesquisa do Estado do Rio de Janeiro
  • Financiadora de Estudos e Projetos
  • Institut de Física d'Altes Energies
  • University of Illinois at Urbana-Champaign
  • Center for Cosmology and Astroparticle Physics, Ohio State University
  • Kavli Institute for Cosmological Physics, University of Chicago
  • Science and Technology Facilities Council
  • Comisión Nacional de Investigación Científica y Tecnológica
  • Centro de Investigaciones Energéticas, Medioambientales y Tecnológicas
  • Integrated Electronics Engineering Center, Binghamton University
  • Argonne National Laboratory
  • Fermilab
  • Lawrence Berkeley National Laboratory
  • SLAC National Accelerator Laboratory
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Physical Review Letters · 2016 · 13,779 citations
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The Astronomical Journal · 2015 · 985 citations
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