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    Solar Contamination in Extreme-precision Radial-velocity Measurements: Deleterious Effects and Prospects for Mitigation

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    Roy_2020_AJ_159_161.pdf
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    Author
    Roy, Arpita cc
    Halverson, Samuel cc
    Mahadevan, Suvrath cc
    Stefansson, Gudmundur cc
    Monson, Andrew
    Logsdon, Sarah E.
    Bender, Chad F.
    Blake, Cullen H. cc
    Golub, Eli
    Gupta, Arvind
    Jaehnig, Kurt P.
    Kanodia, Shubham
    Kaplan, Kyle
    McElwain, Michael W.
    Ninan, Joe P.
    Rajagopal, Jayadev
    Robertson, Paul cc
    Schwab, Christian cc
    Terrien, Ryan C.
    Wang, Sharon Xuesong
    Wolf, Marsha J.
    Wright, Jason T. cc
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    Affiliation
    Univ Arizona, Steward Observ
    Issue Date
    2020-03-18
    Keywords
    Exoplanet astronomy
    Radial velocity
    High resolution spectroscopy
    Sky brightness
    Astronomy data analysis
    
    Metadata
    Show full item record
    Publisher
    IOP PUBLISHING LTD
    Citation
    Arpita Roy et al 2020 AJ 159 161
    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
    Solar contamination, due to moonlight and atmospheric scattering of sunlight, can cause systematic errors in stellar radial velocity (RV) measurements that significantly detract from the similar to 10 cm s(-1) sensitivity required for the detection and characterization of terrestrial exoplanets in or near habitable zones of Sun-like stars. The addition of low-level spectral contamination at variable effective velocity offsets introduces systematic noise when measuring velocities using classical mask-based or template-based cross-correlation techniques. Here we present simulations estimating the range of RV measurement error induced by uncorrected scattered sunlight contamination. We explore potential correction techniques, using both simultaneous spectrometer sky fibers and broadband imaging via coherent fiber imaging bundles, that could reliably reduce this source of error to below the photon-noise limit of typical stellar observations. We discuss the limitations of these simulations, the underlying assumptions, and mitigation mechanisms. We also present and discuss the components designed and built into the NEID (NN-EXPLORE Exoplanet Investigations with Doppler spectroscopy) precision RV instrument for the WIYN 3.5 m telescope, to serve as an ongoing resource for the community to explore and evaluate correction techniques. We emphasize that while "bright time" has been traditionally adequate for RV science, the goal of 10 cm s(-1) precision on the most interesting exoplanetary systems may necessitate access to darker skies for these next-generation instruments.
    ISSN
    0004-6256
    DOI
    10.3847/1538-3881/ab781a
    Version
    Final published version
    ae974a485f413a2113503eed53cd6c53
    10.3847/1538-3881/ab781a
    Scopus Count
    Collections
    UA Faculty Publications

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