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A Census of Young Stellar Objects in Two Line-of-Sight Star-Forming Regions Toward IRAS 22147+5948 in the Outer GalaxyContext. Star formation in the outer Galaxy, namely, outside of the Solar circle, has not been extensively studied in part due to the low CO brightness of the molecular clouds linked with the negative metallicity gradient. Recent infrared surveys provide an overview
of dust emission in large sections of the Galaxy, but they suffer from cloud confusion and poor spatial resolution at far-infrared wavelengths.
Aims. We aim to develop a methodology to identify and classify young stellar objects (YSOs) in star-forming regions in the outer Galaxy and use it to resolve a long-standing disparity in terms of the distance and evolutionary status of IRAS 22147+5948.
Methods. We used a support vector machine learning algorithm to complement standard color–color and color–magnitude diagrams in our search for YSOs in the IRAS 22147 region, based on publicly available data from the Spitzer Mapping of the Outer Galaxy survey. The agglomerative hierarchical clustering algorithm was used to identify clusters. Then the physical properties of individual YSOs were calculated. The distances were determined using CO 1–0 from the Five College Radio Astronomy Observatory survey.
Results. We identified 13 Class I and 13 Class II YSO candidates using the color–color diagrams, along with an additional 2 and 21 sources, respectively, using the applied machine learning techniques. The spectral energy distributions of 23 sources were modeled with a star and a passive disk, corresponding to Class II objects. The models of three sources include envelopes that are typical for Class I objects. The objects were grouped into two clusters located at a distance of 2:2 kpc and 5 clusters at 5:6 kpc. The spatial extent of CO, radio continuum, and dust emission confirms the origin of YSOs in two distinct star-forming regions along a similar line of sight.
Conclusions. The outer Galaxy may serve as a unique laboratory for exploring star formation across environments, on the condition that complementary methods and ancillary data are used to properly account for cloud confusion and distance uncertainties.
Document ID
20230001719
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
Authors
Agata Karska
(Nicolaus Copernicus University Toruń, Poland)
Maciej Koprowski
(Nicolaus Copernicus University Toruń, Poland)
Aleksandra Solarz
(European Southern Observatory Santiago, Chile)
Ryszard Szczerba
(Nicolaus Copernicus Astronomical Center Toruń, Poland)
Marta Sewilo
(University of Maryland, College Park College Park, Maryland, United States)
Natasza Siódmiak
(Nicolaus Copernicus Astronomical Center Toruń, Poland)
Davide Elia
(Istituto di Astrofisica e Planetologia Spaziali Roma, Italy)
Marcin Gawronski
(Nicolaus Copernicus University Toruń, Poland)
Konrad Grzesiak
(Nicolaus Copernicus University Toruń, Poland)
Bosco H K Yung
(Nicolaus Copernicus Astronomical Center Toruń, Poland)
William J Fischer
(Space Telescope Science Institute Baltimore, Maryland, United States)
Lars E Kristensen
(University of Copenhagen Copenhagen, Denmark)
Date Acquired
February 3, 2023
Publication Date
July 25, 2022
Publication Information
Publication: Astronomy & Astrophysics
Publisher: EDP Sciences
Volume: 663
Issue Publication Date: July 25, 2022
ISSN: 0004-6361
e-ISSN: 1432-0746
Subject Category
Astrophysics
Funding Number(s)
CONTRACT_GRANT: 232622226
CONTRACT_GRANT: 80GSFC21M0002
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
External Peer Committee
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