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    Molecules with ALMA at Planet-forming Scales (MAPS). III. Characteristics of radial chemical substructures

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    Author
    Law, C.J.
    Loomis, R.A.
    Teague, R.
    Öberg, K.I.
    Czekala, I. cc
    Huang, J.
    Andrews, S.M.
    Aikawa, Y.
    Alarcón, F.
    Bae, J.
    Bergin, E.A.
    Bergner, J.B.
    Boehler, Y.
    Booth, A.S.
    Bosman, A.D.
    Calahan, J.K.
    Cataldi, G.
    Cleeves, L.I.
    Furuya, K.
    Guzmán, V.V.
    Ilee, J.D.
    Le Gal, R.
    Long, F.
    Ménard, F. cc
    Nomura, H.
    Qi, C.
    Schwarz, K.R.
    Liu, Y.
    Tsukagoshi, T.
    Yamato, Y.
    van't Hoff, M.L.R.
    Walsh, C.
    Wilner, D.J.
    Sierra, A.
    Zhang, K.
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    Affiliation
    Lunar and Planetary Laboratory, University of Arizona
    Issue Date
    2021
    
    Metadata
    Show full item record
    Publisher
    American Astronomical Society
    Citation
    Law, C. J., Loomis, R. A., Teague, R., Öberg, K. I., Czekala, I., Huang, J., Andrews, S. M., Aikawa, Y., Alarcón, F., Bae, J., Bergin, E. A., Bergner, J. B., Boehler, Y., Booth, A. S., Bosman, A. D., Calahan, J. K., Cataldi, G., Cleeves, L. I., Furuya, K., … Zhang, K. (2021). Molecules with ALMA at Planet-forming Scales (MAPS). III. Characteristics of radial chemical substructures. Astrophysical Journal, Supplement Series.
    Journal
    Astrophysical Journal, Supplement Series
    Rights
    Copyright © 2021. 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
    The Molecules with ALMA at Planet-forming Scales (MAPS) Large Program provides a detailed, high-resolution (∼10-20 au) view of molecular line emission in five protoplanetary disks at spatial scales relevant for planet formation. Here we present a systematic analysis of chemical substructures in 18 molecular lines toward the MAPS sources: IM Lup, GM Aur, AS 209, HD 163296, and MWC 480. We identify more than 200 chemical substructures, which are found at nearly all radii where line emission is detected. A wide diversity of radial morphologies-including rings, gaps, and plateaus-is observed both within each disk and across the MAPS sample. This diversity in line emission profiles is also present in the innermost 50 au. Overall, this suggests that planets form in varied chemical environments both across disks and at different radii within the same disk. Interior to 150 au, the majority of chemical substructures across the MAPS disks are spatially coincident with substructures in the millimeter continuum, indicative of physical and chemical links between the disk midplane and warm, elevated molecular emission layers. Some chemical substructures in the inner disk and most chemical substructures exterior to 150 au cannot be directly linked to dust substructure, however, which indicates that there are also other causes of chemical substructures, such as snowlines, gradients in UV photon fluxes, ionization, and radially varying elemental ratios. This implies that chemical substructures could be developed into powerful probes of different disk characteristics, in addition to influencing the environments within which planets assemble. This paper is part of the MAPS special issue of the Astrophysical Journal Supplement. © 2021. The American Astronomical Society. All rights reserved.
    Note
    Immediate access
    ISSN
    0067-0049
    DOI
    10.3847/1538-4365/ac1434
    Version
    Final published version
    ae974a485f413a2113503eed53cd6c53
    10.3847/1538-4365/ac1434
    Scopus Count
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    UA Faculty Publications

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