Precision Analysis of Ratios in Orion IRc2 Acetylene Isotopologues via Fitting
arXiv:2501.15824 · doi:10.1051/0004-6361/202554316
Abstract
We present a detailed analysis of acetylene (CH) and its isotopologues in the Orion IRc2 region, focusing on the determination of C/C isotopic ratios using high-resolution infrared spectra from SOFIA. By employing a robust fitting method, we simultaneously determined temperature and column density, achieving a C/C ratio of for the blue clump and for the red clump. These results revealed significant discrepancies with the traditional rotational diagram method, which overestimated the ratios by 12.1% and 23.9%, respectively. Our approach also reduced uncertainties by up to 75%, providing more precise and reliable isotopic ratios. Additionally, we extended the analysis to isotopologues not covered in HITRAN, calculating vibrational and rotational constants through quantum chemical calculations. This allowed us to model subtle isotopic shifts induced by C and deuterium substitution, enabling accurate isotopologue detection in astrophysical environments. The Python package (TOPSEGI) developed in this study facilitates efficient fitting and isotopic ratio analysis, making it a valuable tool for future high-resolution observations. This work highlights the critical role of advanced spectral models and fitting techniques in understanding isotopic fractionation and the chemical evolution of interstellar matter.
References in corpus (7)
- ExoMol molecular line lists -- XXXVII: spectra of acetylene
- A Detailed Analysis of the Dust Formation Zone of IRC+10216 Derived from Mid-IR Bands of C2H2 and HCN
- MARVEL analysis of the measured high-resolution rovibrational spectra of C2H2
- Hierarchical progressive surveys. Multi-resolution HEALPix data structures for astronomical images, catalogues, and 3-dimensional data cubes
- First detection of 13CH in the interstellar medium
- First detection of the carbon chain molecules 13CCC and C13CC towards SgrB2(M)
- The mid-infrared molecular inventory towards Orion IRc2