English

Identification of hot gas around low-mass protostars

Astrophysics of Galaxies 2024-05-24 v1

Abstract

The low carbon content of Earth and primitive meteorites compared to the Sun and interstellar grains suggests that carbon-rich grains were destroyed in the inner few astronomical units of the young solar system. A promising mechanism to selectively destroy carbonaceous grains is thermal sublimation within the soot line at \gtrsim 300 K. To address whether such hot conditions are common amongst low-mass protostars, we observe CH3_3CN transitions at 1, 2 and 3 mm with the NOrthern Extended Millimeter Array (NOEMA) toward seven low-mass and one intermediate-mass protostar (Lbol2300LL_{\rm{bol}} \sim2-300 L_\odot), as CH3_3CN is an excellent temperature tracer. We find >> 300 K gas toward all sources, indicating that hot gas may be prevalent. Moreover, the excitation temperature for CH3_3OH obtained with the same observations is always lower (\sim135-250 K), suggesting that CH3_3CN and CH3_3OH have a different spatial distribution. A comparison of the column densities at 1 and 3 mm shows a stronger increase at 3 mm for CH3_3CN than for CH3_3OH. Since the dust opacity is lower at longer wavelengths, this indicates that CH3_3CN is enhanced in the hot gas compared to CH3_3OH. If this CH3_3CN enhancement is the result of carbon-grain sublimation, these results suggests that Earth's initial formation conditions may not be rare.

Keywords

Cite

@article{arxiv.2405.14820,
  title  = {Identification of hot gas around low-mass protostars},
  author = {Merel L. R. van 't Hoff and Edwin A. Bergin and Penelope Riley and Sanil Mittal and Jes K. Jørgensen and John J. Tobin},
  journal= {arXiv preprint arXiv:2405.14820},
  year   = {2024}
}

Comments

19 pages, 9 figures, 4 tables (plus 13 pages appendix with 10 figures, 4 tables). Accepted for publication in ApJ