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June 9, 2026The Astrophysical Journal Supplement Series1 citationsOpen Access

A Study of the Physical Properties and Star Formation Activity of a Large Sample of Molecular Clouds. I. Distances

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JMJuan MeiMFMin FangMZMiaomiao Zhang

Key Points

  • This research aims to determine the accurate distances to molecular clouds to assess their physical properties and explore star formation activity.
  • Analyzed 103,517 molecular clouds using the DBSCAN algorithm from the MWISP CO survey.
  • Linked velocity-integrated-intensity maps of 12 CO lines with three-dimensional dust extinction maps from Gaia and others.
  • Generated a catalog of 1573 molecular clouds with their distances and related physical properties.
  • Catalog includes distances ranging from ∼150 to ∼3000 pc, with 90% of measurements being new.
  • Statistical uncertainties are ∼20% and systematic uncertainties ∼10%.
  • Provides a foundation for studying molecular cloud scaling relations and star formation influence.

Abstract

Abstract Accurate distances to molecular clouds are crucial for determining their physical properties, understanding star formation, and tracing Galactic spiral structure. A total of 103,517 molecular clouds have been identified by the DBSCAN algorithm in the Milky Way Imaging Scroll Painting (MWISP) Phase I CO survey ( l = 9 . ° 75–229 . ° 75, ∣ b ∣ ≤ 5 . ° 25), most of which lack reliable distances. In this work, we propose three independent methods, all of which match the molecular cloud’s velocity-integrated-intensity maps of 12 CO lines from the MWISP with the three-dimensional dust extinction maps derived from Gaia, Pan-STARRS 1, and the Two Micron All Sky Survey, to determine molecular cloud distances. We present a catalog of 1573 molecular clouds with robust distances ranging from ∼150 to ∼3000 pc, 90% of which are measured for the first time, with typical statistical and systematic uncertainties of ∼20% and ∼10%, respectively. We also derive their physical properties, such as their mass and sizes. This publicly available catalog of molecular clouds with distances provides a foundation for testing molecular cloud scaling relations and probing how cloud conditions influence star formation across diverse Galactic environments.

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Cite This Study

Mei et al. (2026) studied this question.

synapsesocial.com/papers/6a27ad11a963992e162676d4https://doi.org/10.3847/1538-4365/ae6580
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