The Detection of Hot Molecular Cores in the Small Magellanic Cloud
arXiv:2303.05630 · doi:10.3847/2041-8213/acc031
Abstract
We report the first detection of hot molecular cores in the Small Magellanic Cloud, a nearby dwarf galaxy with 0.2 solar metallicity. We observed two high-mass young stellar objects in the SMC with ALMA, and detected emission lines of CO, HCO+, H13CO+, SiO, H2CO, CH3OH, SO, and SO2. Compact hot-core regions are traced by SO2, whose spatial extent is about 0.1 pc, and the gas temperature is higher than 100 K based on the rotation diagram analysis. In contrast, CH3OH, a classical hot-core tracer, is dominated by extended (0.2-0.3 pc) components in both sources, and the gas temperature is estimated to be 39+-8 K for one source. Protostellar outflows are also detected from both sources as high-velocity components of CO. The metallicity-scaled abundances of SO2 in hot cores are comparable among the SMC, LMC, and Galactic sources, suggesting that the chemical reactions leading to SO2 formation would be regulated by elemental abundances. On the other hand, CH3OH shows a large abundance variation within SMC and LMC hot cores. The diversity in the initial condition of star formation (e.g., degree of shielding, local radiation field strength) may lead to the large abundance variation of organic molecules in hot cores. This work, in conjunction with previous hot-core studies in the LMC and outer/inner Galaxy, suggests that the formation of a hot core would be a common phenomenon during high-mass star formation across the metallicity range of 0.2-1 solar metallicity. High-excitation SO2 lines will be a useful hot-core tracer in the low-metallicity environments of the SMC and LMC.
Accepted for publication in ApJL, 17 pages, 8 figures, 4 tables. arXiv admin note: text overlap with arXiv:2109.11123
References in corpus (11)
- Complex Chemistry in Star-Forming Regions: An Expanded Gas-Grain Warm-up Chemical Model
- Efficient Production of S in Interstellar Ices: The effects of cosmic ray-driven radiation chemistry and non-diffusive bulk reactions
- Abundances and Isotope Ratios in the Magellanic Clouds: The Star Forming Environment of N113
- A new look at sulphur chemistry in hot cores and corinos
- The Detection of Hot Cores and Complex Organic Molecules in the Large Magellanic Cloud
- Photometric metallicity map of the Small Magellanic Cloud
- -band integral field spectroscopy and optical spectroscopy of massive young stellar objects in the Small Magellanic Cloud
- Evaporation of grain-surface species by shock waves in proto-planetary disk
- ALMA Observations of Molecular Complexity in the Large Magellanic Cloud: The N105 Star-Forming Region
- The First Detection of a Protostellar CO Outflow in the Small Magellanic Cloud with ALMA
- The Detection of Deuterated Water in the Large Magellanic Cloud with ALMA
Cited by in corpus (6)
- Understanding molecular ratios in the carbon and oxygen poor outer Milky Way with interpretable machine learning
- ALMA 0.1 pc View of Molecular Clouds Associated with High-Mass Protostellar Systems in the Small Magellanic Cloud: Are Low-Metallicity Clouds Filamentary or Not?
- Complex Organic Molecules towards the central molecular zone of NGC 253
- MAGellanic Outflow and chemistry Survey (MAGOS): Hot cores in the LMC
- Identification of molecular line emission using Convolutional Neural Networks
- CHEMOUT: CHEMical complexity in star-forming regions of the OUTer Galaxy. V. Chemical composition gradients as a function of the galactocentric radius