CO depletion in infrared dark clouds
Creators
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1.
International Research Institute for Radio Astronomy
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2.
European Southern Observatory
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3.
Chalmers University of Technology
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4.
University of Virginia
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5.
Yale University
- 6. INAF Osservatorio Astronomico di Arcetri, Largo E. Fermi 5, 50125, Florence, Italy
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7.
California Institute of Technology
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8.
Centro de Astrobiología
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9.
Paris Observatory
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10.
Max Planck Institute for Extraterrestrial Physics
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11.
Liverpool John Moores University
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12.
Leiden University
Abstract
Context. Infrared dark clouds (IRDCs) are cold, dense structures that are likely representative of the initial conditions of star formation. Many studies of IRDCs employ CO to investigate cloud dynamics, but CO can be highly depleted from the gas phase in IRDCs, which affects its fidelity as tracer. The CO depletion process is also of great interest in astrochemistry because CO ice in dust grain mantles provides the raw material for the formation of complex organic molecules.
Aims. We study CO depletion towards four IRDCs to investigate its correlation with the H2 number density and dust temperature, calculated from Herschel far-infrared images.
Methods. We used 13CO J = 1 → 0 and 2 → 1 maps to measure the CO depletion factor, fD, across IRDCs G23.46-00.53, G24.49-00.70, G24.94-00.15, and G25.16-00.28. We also considered a normalised CO depletion factor, f′D, which takes a value of unity, that is, no depletion, in the outer lower-density and warmer regions of the clouds. We then investigated the dependence of fD and f′D on the gas density, nH, and dust temperature, Tdust.
Results. The CO depletion rises as the density increases and reaches maximum values of f′D ∼ 10 in some regions with nH ≳ 3 × 105 cm−3, although with significant scatter at a given density. We find a tighter, less scattered relation of f′D with temperature that rapidly rise for temperatures ≲18 K. We propose a functional form f′D = exp(T0/[Tdust − T1]) with T0 ≃ 4 K and T1 ≃ 12 K to reproduce this behaviour.
Conclusions. We conclude that CO is strongly depleted from the gas phase in cold, dense regions of IRDCs. This means that if it is not accounted for, CO depletion can lead to an underestimation of the total cloud masses based on CO line fluxes by factors up to ∼5. These results indicate a dominant role for thermal desorption in setting near equilibrium abundances of gas-phase CO in IRDCs and provide important constraints for astrochemical models and the chemodynamical history of gas in the early stages of star formation.
Copyright and License
© The Authors 2026. Open Access article, published by EDP Sciences, under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
Acknowledgement
G.C. acknowledges support from the Swedish Research Council (VR Grant; Project: 2021-05589). J.C.T. acknowledges support from ERC project 788829 (MSTAR). I.J.-S. acknowledges funding from grant PID2022-136814NB-I00 funded by the Spanish Ministry of Science, Innovation and Universities/State Agency of Research MICIU/AEI/10.13039/501100011033 and by “ERDF/EU”. J.D.H. gratefully acknowledges financial support from the Royal Society (University Research Fellowship; URF/R1/221620). S.V. acknowledges partial funding from the European Research Council (ERC) Advanced Grant MOPPEX 833460. This work is based on observations carried out under project number 013-20 with the IRAM 30m telescope. IRAM is supported by INSU/CNRS (France), MPG (Germany) and IGN (Spain). This publication makes use of data from FUGIN, FOREST Unbiased Galactic plane Imaging survey with the Nobeyama 45-m telescope, a legacy project in the Nobeyama 45-m radio telescope.
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Additional details
Related works
- Is new version of
- Discussion Paper: arXiv:2509.04864 (arXiv)
Funding
- Swedish Research Council
- 2021-05589
- European Research Council
- 788829
- Ministerio de Ciencia, Innovación y Universidades
- PID2022-136814NB-I00
- Royal Society
- URF/R1/221620
- European Research Council
- 833460
Dates
- Submitted
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2025-09-04
- Accepted
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2025-10-28
- Available
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2026-01-07Published online
Caltech Custom Metadata
- Caltech groups
- Infrared Processing and Analysis Center (IPAC) , Division of Physics, Mathematics and Astronomy (PMA)
- Publication Status
- Published