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Molecules with ALMA at Planet-forming Scales (MAPS) I: Program Overview and Highlights

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arxiv 2109.06268 v2 pith:DGDNHU3O submitted 2021-09-13 astro-ph.EP astro-ph.GAastro-ph.IMastro-ph.SR

Molecules with ALMA at Planet-forming Scales (MAPS) I: Program Overview and Highlights

classification astro-ph.EP astro-ph.GAastro-ph.IMastro-ph.SR
keywords diskdisksformationmapsmoleculesplanetprogramalma
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Planets form and obtain their compositions in dust and gas-rich disks around young stars, and the outcome of this process is intimately linked to the disk chemical properties. The distributions of molecules across disks regulate the elemental compositions of planets, including C/N/O/S ratios and metallicity (O/H and C/H), as well as access to water and prebiotically relevant organics. Emission from molecules also encodes information on disk ionization levels, temperature structures, kinematics, and gas surface densities, which are all key ingredients of disk evolution and planet formation models. The Molecules with ALMA at Planet-forming Scales (MAPS) ALMA Large Program was designed to expand our understanding of the chemistry of planet formation by exploring disk chemical structures down to 10 au scales. The MAPS program focuses on five disks - around IM Lup, GM Aur, AS 209, HD 163296, and MWC 480 - in which dust substructures are detected and planet formation appears to be ongoing. We observed these disks in 4 spectral setups, which together cover ~50 lines from over 20 different species. This paper introduces the ApJS MAPS Special Issue by presenting an overview of the program motivation, disk sample, observational details, and calibration strategy. We also highlight key results, including discoveries of links between dust, gas, and chemical sub-structures, large reservoirs of nitriles and other organics in the inner disk regions, and elevated C/O ratios across most disks. We discuss how this collection of results is reshaping our view of the chemistry of planet formation.

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Cited by 4 Pith papers

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  4. Dust and Gas Transport in Substructured Nonideal MHD Wind-Launching Disks with Embedded Planets

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