Robotic reverberation mapping of the broad-line radio galaxy 3C 120

Author:

Hlabathe Michael S12ORCID,Starkey David A3,Horne Keith3,Romero-Colmenero Encarni24,Crawford Steven M5,Valenti Stefano67,Winkler Hartmut8,Barth Aaron J9ORCID,Onken Christopher A10ORCID,Sand David J11,Treu Tommaso12,Diamond-Stanic Aleksandar M13,Villforth Carolin14ORCID

Affiliation:

1. University of Cape Town, Private Bag X3, Rondebosch 7701, South Africa

2. South African Astronomical Observatory, PO Box 9, Observatory 7935, Cape Town, South Africa

3. SUPA Physics and Astronomy, University of St Andrews, Fife, KY16 9SS, Scotland, UK

4. Southern African Large Telescope Foundation, PO Box 9, Observatory 7935, Cape Town, South Africa

5. Space Telescope Science Institute, 3700 San Martin Drive, Baltimore, MD 21218, USA

6. Department of Physics, University of California, 1 Shields Avenue, Davis, CA 95616-5270, USA

7. Las Cumbres Observatory Global Telescope Network, 6740 Cortona Drive, Suite 102, Goleta, CA 93117, USA

8. Department of Physics, University of Johannesburg, PO Box 524, 2006 Auckland Park, South Africa

9. Department of Physics and Astronomy, University of California, 4129 Frederick Reines Hall, Irvine, CA 92697-4575, USA

10. Research School of Astronomy and Astrophysics, Australian National University, Canberra, ACT 2611, Australia

11. Department of Astronomy/Steward Observatory, 933 North Cherry Avenue, Room N204, Tucson, AZ 85721-0065, USA

12. Department of Physics and Astronomy, University of California, Los Angeles, CA 90095-1547, USA

13. Department of Physics and Astronomy, Bates College, 44 Campus Avenue, Lewiston, ME 04240, USA

14. Department of Physics, University of Bath, Claverton Down Road, Bath BA2 7AY, UK

Abstract

ABSTRACT We carried out photometric and spectroscopic observations of the well-studied broad-line radio galaxy 3C 120 with the Las Cumbres Observatory (LCO) global robotic telescope network from 2016 December to 2018 April as part of the LCO AGN Key Project on Reverberation Mapping of Accretion Flows. Here, we present both spectroscopic and photometric reverberation mapping results. We used the interpolated cross-correlation function to perform multiple-line lag measurements in 3C 120. We find the H γ, He ii λ4686, H β, and He i λ5876 lags of $\tau _{\text{cen}} = 18.8_{-1.0}^{+1.3}$, $2.7_{-0.8}^{+0.7}$, $21.2_{-1.0}^{+1.6}$, and $16.9_{-1.1}^{+0.9}$ d, respectively, relative to the V-band continuum. Using the measured lag and rms velocity width of the H β emission line, we determine the mass of the black hole for 3C 120 to be $M=(6.3^{+0.5}_{-0.3})\times 10^7\, (f/5.5)$ M⊙. Our black hole mass measurement is consistent with similar previous studies on 3C 120, but with small uncertainties. In addition, velocity-resolved lags in 3C 120 show a symmetric pattern across the H β line, 25 d at line centre decreasing to 17 d in the line wings at ±4000 km s−1. We also investigate the inter-band continuum lags in 3C 120 and find that they are generally consistent with τ ∝ λ4/3 as predicted from a geometrically thin, optically thick accretion disc. From the continuum lags, we measure the best-fitting value τ0 = 3.5 ± 0.2 d at $\lambda _{\rm 0} = 5477\, \mathring{\rm A}$. It implies a disc size a factor of 1.6 times larger than prediction from the standard disc model with L/LEdd = 0.4. This is consistent with previous studies in which larger than expected disc sizes were measured.

Funder

Science and Technology Facilities Council

Space Telescope Science Institute

National Science Foundation

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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