The chemistry of C3 & Carbon Chain Molecules in DR21(OH)
B. Mookerjea, G. Hassel, M. Gerin, T. Giesen, J. Stutzki, E. Herbst,, J. H. Black, P. F. Goldsmith, K. M. Menten, J. Krelowski, M. De Luca, T., Csengeri, C. Joblin, M. Kazmierczak, M. Schmidt, J. R. Goicoechea, J., Cernicharo

TL;DR
This study investigates the presence and formation of C3 and related molecules in DR21(OH) using far-infrared spectroscopy, revealing insights into warm carbon chain chemistry and molecular evolution in high-mass star-forming regions.
Contribution
First detection of C3 in multiple far-infrared transitions in DR21(OH), linking observed abundances to specific chemical models and evolutionary stages.
Findings
C3 detected in absorption in four transitions towards DR21(OH)
C3 abundance varies between the envelope, MM1, and MM2
Chemical modeling supports warm carbon chain chemistry in the region
Abstract
(Abridged) We have observed velocity resolved spectra of four ro-vibrational far-infrared transitions of C3 between the vibrational ground state and the low-energy nu2 bending mode at frequencies between 1654--1897 GHz using HIFI on board Herschel, in DR21(OH), a high mass star forming region. Several transitions of CCH and c-C3H2 have also been observed with HIFI and the IRAM 30m telescope. A gas and grain warm-up model was used to identify the primary C3 forming reactions in DR21(OH). We have detected C3 in absorption in four far-infrared transitions, P(4), P(10), Q(2) and Q(4). The continuum sources MM1 and MM2 in DR21(OH) though spatially unresolved, are sufficiently separated in velocity to be identified in the C3 spectra. All C3 transitions are detected from the embedded source MM2 and the surrounding envelope, whereas only Q(4) & P(4) are detected toward the hot core MM1. The…
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