High Spatial Resolution Thermal Infrared Spectroscopy with ALES: Resolved Spectra of the Benchmark Brown Dwarf Binary HD 130948BC
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Briesemeister_2019_AJ_157_244.pdf
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Final Published Version
Author
Briesemeister, Zackery W.Skemer, Andrew J.
Stone, Jordan M.
Barman, Travis S.
Hinz, Philip
Leisenring, Jarron
Skrutskie, Michael F.
Woodward, Charles E.
Spalding, Eckhart
Affiliation
Univ Arizona, Steward ObservUniv Arizona, Lunar & Planetary Lab
Issue Date
2019-06
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IOP PUBLISHING LTDCitation
Briesemeister, Z. W., Skemer, A. J., Stone, J. M., Barman, T. S., Hinz, P., Leisenring, J., ... & Spalding, E. (2019). High Spatial Resolution Thermal Infrared Spectroscopy with ALES: Resolved Spectra of the Benchmark Brown Dwarf Binary HD 130948BC. The Astronomical Journal, 157(6), 244.Journal
ASTRONOMICAL JOURNALRights
© 2019. The American Astronomical Society. All rights reserved.Collection Information
This item from the UA Faculty Publications collection is made available by the University of Arizona with support from the University of Arizona Libraries. If you have questions, please contact us at repository@u.library.arizona.edu.Abstract
We present 2.9-4.1 mu m integral field spectroscopy of the L4+L4 brown dwarf binary HD 130948BC, obtained with the Arizona Lenslets for Exoplanet Spectroscopy (ALES) mode of the Large Binocular Telescope Interferometer. The HD 130948 system is a hierarchical triple system, in which the G2V primary is joined by two co-orbiting brown dwarfs. By combining the age of the system with the dynamical masses and luminosities of the substellar companions, we can test evolutionary models of cool brown dwarfs and extrasolar giant planets. Previous near-infrared studies suggest a disagreement between HD 130948BC luminosities and those derived from evolutionary models. We obtained spatially resolved, low-resolution (R similar to 20) L-band spectra of HD 130948B and C to extend the wavelength coverage into the thermal infrared. Jointly using JHK photometry and ALES L-band spectra for HD 130948BC, we derive atmospheric parameters that are consistent with parameters derived from evolutionary models. We leverage the consistency of these atmospheric quantities to favor a younger age (0.50 +/- 0.07 Gyr) of the system compared to the older age (0.79(-0.15)(+0.22)) determined with gyrochronology in order to address the luminosity discrepancy.ISSN
0004-6256EISSN
1538-3881Version
Final published versionSponsors
NSF [1608834, 1614320, 1405505, 1614492]; NASA through Hubble Fellowship grant - Space Telescope Science Institute [HST-HF2-51398.001-A]; NASA [NAS4-26555]; NASA XRP award [NNX17AB63G]; National Science Foundation [DGE 1842400]ae974a485f413a2113503eed53cd6c53
10.3847/1538-3881/ab1901
