ALMA–IRDC – II. First high-angular resolution measurements of the 14N/15N ratio in a large sample of infrared-dark cloud cores

Author:

Fontani F12ORCID,Barnes A T3ORCID,Caselli P2,Henshaw J D4ORCID,Cosentino G5ORCID,Jiménez-Serra I6,Tan J C5,Pineda J E2ORCID,Law C Y5

Affiliation:

1. INAF-Osservatorio Astrofisico di Arcetri, Largo E. Fermi 5, I-50125 Florence, Italy

2. Centre for Astrochemical Studies, Max-Planck-Institute for Extraterrestrial Physics, Giessenbachstrasse 1, D-85748 Garching, Germany

3. Argelander Institute for Astronomy, University of Bonn, Auf dem Hügel71, D-53121 Bonn, Germany

4. Max Planck Institute for Astronomy, Königstuhl 17, D-69117 Heidelberg, Germany

5. Space, Earth and Environment Department, Chalmers University of Technology, Chalmersplatsen 4, SE-41296 Göteborg, Sweden

6. Departamento de Astrofísica, Centro de Astrobiología, E-28850 Torrejón de Ardoz, Madrid, Spain

Abstract

ABSTRACT The 14N/15N ratio in molecules exhibits a large variation in star-forming regions, especially when measured from N2H+ isotopologues. However, there are only a few studies performed at high-angular resolution. We present the first interferometric survey of the 14N/15N ratio in N2H+ obtained with Atacama Large Millimeter Array observations towards four infrared-dark clouds harbouring 3 mm continuum cores associated with different physical properties. We detect N15NH+ (1–0) in $\sim 20\!-\!40{{\ \rm per\ cent}}$ of the cores, depending on the host cloud. The 14N/15N values measured towards the millimetre continuum cores range from a minimum of ∼80 up to a maximum of ∼400. The spread of values is narrower than that found in any previous single-dish survey of high-mass star-forming regions and than that obtained using the total power data only. This suggests that the 14N/15N ratio is on average higher in the diffuse gaseous envelope of the cores and stresses the need for high-angular resolution maps to measure correctly the 14N/15N ratio in dense cores embedded in IRDCs. The average 14N/15N ratio of ∼210 is also lower than the interstellar value at the Galactocentric distance of the clouds (∼300–330), although the sensitivity of our observations does not allow us to unveil 14N/15N ratios higher than ∼400. No clear trend is found between the 14N/15N ratio and the core physical properties. We find only a tentative positive trend between 14N/15N and H2 column density. However, firmer conclusions can be drawn only with higher sensitivity measurements.

Funder

Federación Española de Enfermedades Raras

Ministerio de Ciencia e Innovación

H2020 European Research Council

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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