Published October 1, 2017 | Version Submitted + Published
Journal Article Open

Constraints on the Progenitor of SN 2010jl and Pre-existing Hot Dust in its Surrounding Medium

  • 1. ROR icon Goddard Space Flight Center
  • 2. ROR icon Space Telescope Science Institute
  • 3. ROR icon University of California, Berkeley
  • 4. ROR icon University of Arizona
  • 5. ROR icon Infrared Processing and Analysis Center

Abstract

A search for the progenitor of SN 2010jl, an unusually luminous core-collapse supernova of Type IIn, using pre-explosion Hubble/WFPC2 and Spitzer/IRAC images of the region, yielded upper limits on the UV and near-infrared (IR) fluxes from any candidate star. These upper limits constrain the luminosity and effective temperature of the progenitor, the mass of any pre-existing dust in its surrounding circumstellar medium (CSM), and dust proximity to the star. A lower limit on the CSM dust mass is required to hide a luminous progenitor from detection by Hubble. Upper limits on the CSM dust mass and constraints on its proximity to the star are set by requiring that the absorbed and reradiated IR emission not exceed the IRAC upper limits. Using the combined extinction-IR emission constraints, we present viable M_d-R_1 combinations, where M_d and R_1 are the CSM dust mass and its inner radius. These depend on the CSM outer radius, dust composition and grain size, and the properties of the progenitor. The results constrain the pre-supernova evolution of the progenitor, and the nature and origin of the observed post-explosion IR emission from SN 2010jl. In particular, an η Car-type progenitor will require at least 4 mag of visual extinction to avoid detection by Hubble. This can be achieved with dust masses ≳ 10^(-3) M⊙ (less than the estimated 0.2–0.5 M⊙ around η Car), which must be located at distances of ≳ 10^(16) cm from the star to avoid detection by Spitzer.

Additional Information

© 2017 The American Astronomical Society. Received 2017 June 13; revised 2017 July 27; accepted 2017 August 12; published 2017 September 25. E.D. and R.G.A. acknowledge NASA's 16-ATP2016-0004 grant for support on this project. A.V.F.'s group is grateful for generous financial assistance from the Christopher R. Redlich Fund, the TABASGO Foundation, NSF grant AST-1211916, and the Miller Institute for Basic Research in Science (UC Berkeley) Support was also provided by NASA through HST grants GO-14149 and GO-14668 from the Space Telescope Science Institute, which is operated by AURA, Inc., under NASA contract NAS 5-26555. The work of A.V.F. was completed in part at the Aspen Center for Physics, which is supported by NSF grant PHY-1607611; he thanks the Center for its hospitality during the neutron stars workshop in 2017 June and July.

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Published - Dwek_2017_ApJ_847_91.pdf

Submitted - 1708.05093.pdf

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Additional details

Identifiers

Eprint ID
81808
Resolver ID
CaltechAUTHORS:20170925-105211235

Related works

Funding

NASA
16-ATP2016-0004
Christopher R. Redlich Fund
TABASGO Foundation
NSF
AST-1211916
University of California, Berkeley
NASA
GO-14149
NASA
GO-14668
NASA
NAS 5-26555
NSF
PHY-1607611

Dates

Created
2017-09-25
Created from EPrint's datestamp field
Updated
2021-11-15
Created from EPrint's last_modified field

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