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    Simulating the Multi-epoch Direct Detection Technique to Isolate the Thermal Emission of the Non-transiting Hot Jupiter HD187123b

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    Buzard_2020_AJ_160_1.pdf
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    Author
    Buzard, Cam
    Finnerty, Luke
    Piskorz, Danielle
    Pelletier, Stefan
    Benneke, Björn cc
    Bender, Chad F.
    Lockwood, Alexandra C.
    Wallack, Nicole L.
    Wilkins, Olivia H.
    Blake, Geoffrey A. cc
    Affiliation
    Univ Arizona, Dept Astron
    Univ Arizona, Steward Observ
    Issue Date
    2020-06-04
    
    Metadata
    Show full item record
    Publisher
    IOP PUBLISHING LTD
    Citation
    Cam Buzard et al 2020 AJ 160 1
    Journal
    ASTRONOMICAL JOURNAL
    Rights
    Copyright © 2020. 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 report the 6.5 sigma detection of water from the hot Jupiter HD187123b with a Keplerian orbital velocity K-p of 53 +/- 13 km s(-1). This high-confidence detection is made using a multi-epoch, high-resolution, cross-correlation technique, and corresponds to a planetary mass of 1.4(-0.3)(1.05) M-J and an orbital inclination of 21 degrees +/- 5 degrees. The technique works by treating the planet/star system as a spectroscopic binary and obtaining high signal-to-noise, high-resolution observations at multiple points across the planet's orbit to constrain the system's binary dynamical motion. All together, seven epochs of Keck/NIRSPEC L-band observations were obtained, with five before the instrument upgrade and two after. Using high-resolution SCARLET planetary and PHOENIX stellar spectral models, we were able to drastically increase the confidence of the detection by running simulations that could reproduce, and thus remove, the nonrandom structured noise in the final likelihood space well. The ability to predict multi-epoch results will be extremely useful for furthering the technique. Here, we use these simulations to compare three different approaches to combining the cross correlations of high-resolution spectra and find that the Zucker log(L) approach is least affected by unwanted planet/star correlation for our HD187123 data set. Furthermore, we find that the same total signal-to-noise ratio (S/N) spread across an orbit in many, lower S/N epochs rather than fewer, higher S/N epochs could provide a more efficient detection. This work provides a necessary validation of multi-epoch simulations, which can be used to guide future observations and will be key to studying the atmospheres of farther separated, non-transiting exoplanets.
    ISSN
    0004-6256
    DOI
    10.3847/1538-3881/ab8f9c
    Version
    Final published version
    ae974a485f413a2113503eed53cd6c53
    10.3847/1538-3881/ab8f9c
    Scopus Count
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    UA Faculty Publications

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