Published June 10, 2017 | Version Published + Submitted
Journal Article Open

Revisiting Optical Tidal Disruption Events with iPTF16axa

  • 1. ROR icon University of Maryland, College Park
  • 2. ROR icon California Institute of Technology
  • 3. ROR icon Goddard Space Flight Center
  • 4. ROR icon Hebrew University of Jerusalem
  • 5. ROR icon University of California, Santa Barbara
  • 6. ROR icon Las Cumbres Observatory Global Telescope Network
  • 7. ROR icon Infrared Processing and Analysis Center
  • 8. ROR icon Stockholm University
  • 9. ROR icon University of Washington
  • 10. ROR icon University of California, Berkeley
  • 11. ROR icon Lawrence Berkeley National Laboratory
  • 12. ROR icon Los Alamos National Laboratory

Abstract

We report the discovery by the intermediate Palomar Transient Factory (iPTF) of a candidate tidal disruption event (TDE) iPTF16axa at z = 0.108 and present its broadband photometric and spectroscopic evolution from three months of follow-up observations with ground-based telescopes and Swift. The light curve is well fitted with a t^(−5/3) decay, and we constrain the rise time to peak to be <49 rest-frame days after disruption, which is roughly consistent with the fallback timescale expected for the ~5 × 10^6 M_⊙ black hole inferred from the stellar velocity dispersion of the host galaxy. The UV and optical spectral energy distribution is well described by a constant blackbody temperature of T ~ 3 × 10^4 K over the monitoring period, with an observed peak luminosity of 1.1 × 10^(44) erg s^(−1). The optical spectra are characterized by a strong blue continuum and broad He ii and Hα lines, which are characteristic of TDEs. We compare the photometric and spectroscopic signatures of iPTF16axa with 11 TDE candidates in the literature with well-sampled optical light curves. Based on a single-temperature fit to the optical and near-UV photometry, most of these TDE candidates have peak luminosities confined between log(L [erg s^(−1)]) = 43.4–44.4, with constant temperatures of a few ×10^4 K during their power-law declines, implying blackbody radii on the order of 10 times the tidal disruption radius, that decrease monotonically with time. For TDE candidates with hydrogen and helium emission, the high helium-to-hydrogen ratios suggest that the emission arises from high-density gas, where nebular arguments break down. We find no correlation between the peak luminosity and the black hole mass, contrary to the expectations for TDEs to have M ∝ M_(BH)^(-1/2).

Additional Information

© 2017 American Astronomical Society. Received 2017 March 1. Accepted 2017 May 13. Published 2017 June 8. We thank the anonymous referee for helpful comments regarding the manuscript. T.H. thanks T. Holoien and C. Bonnerot for providing data from their papers. S.G. is supported in part by NSF CAREER grant 1454816, NASA Swift Cycle 12 grant NNX16AN85G, and NASA Keck Grant 1568615. N.R. acknowledges the support of a Joint Space-Science Institute prize postdoctoral fellowship. A.H. acknowledges the support of a grant from the I-CORE program "From the Big Bang to Planets." Support for I.A. was provided by NASA through the Einstein Fellowship Program, grant PF6-170148. These results made use of the Discovery Channel Telescope at Lowell Observatory. Lowell is a private, non-profit institution dedicated to astrophysical research and public appreciation of astronomy and operates the DCT in partnership with Boston University, the University of Maryland, the University of Toledo, Northern Arizona University, and Yale University. The W. M. Keck Observatory is operated as a scientific partnership among the California Institute of Technology, the University of California, and NASA; the Observatory was made possible by the generous financial support of the W. M. Keck Foundation. This research used resources of the National Energy Research Scientific Computing Center, a DOE Office of Science User Facility supported by the Office of Science of the U.S. Department of Energy under Contract No. DE-AC02-05CH11231.

Attached Files

Published - Hung_2017_ApJ_842_29.pdf

Submitted - 1703.01299v2.pdf

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Additional details

Identifiers

Eprint ID
78038
Resolver ID
CaltechAUTHORS:20170609-064008817

Related works

Funding

NSF
AST-1454816
NASA
NNX16AN85G
NASA
1568615
Joint Space-Science Institute
I-CORE Program of the Planning and Budgeting Committee
NASA Einstein Fellowship
PF6-170148
W. M. Keck Foundation
Department of Energy (DOE)
DE-AC02-05CH11231

Dates

Created
2017-06-09
Created from EPrint's datestamp field
Updated
2021-11-15
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