English

An Early Transition to Magnetic Supercriticality in Star Formation

Astrophysics of Galaxies 2021-12-24 v1 Solar and Stellar Astrophysics

Abstract

Magnetic fields play an important role in the evolution of interstellar medium and star formation. As the only direct probe of interstellar field strength, credible Zeeman measurements remain sparse due to the lack of suitable Zeeman probes, particularly for cold, molecular gas. Here we report the detection of a magnetic field of ++3.8 ±\pm 0.3 μ\muG through the HI narrow self-absorption (HINSA) toward L1544, a well-studied prototypical prestellar core in an early transition between starless and protostellar phases characterized by high central number density and low central temperature. A combined analysis of the Zeeman measurements of quasar HI absorption, HI emission, OH emission, and HINSA reveals a coherent magnetic field from the atomic cold neutral medium (CNM) to the molecular envelope. The molecular envelope traced by HINSA is found to be magnetically supercritical, with a field strength comparable to that of the surrounding diffuse, magnetically subcritical CNM despite a large increase in density. The reduction of the magnetic flux relative to the mass, necessary for star formation, thus seems to have already happened during the transition from the diffuse CNM to the molecular gas traced by HINSA, earlier than envisioned in the classical picture where magnetically supercritical cores capable of collapsing into stars form out of magnetically subcritical envelopes.

Keywords

Cite

@article{arxiv.2112.12644,
  title  = {An Early Transition to Magnetic Supercriticality in Star Formation},
  author = {Tao-Chung Ching and Di Li and Carl Heiles and Zhi-Yun Li and Lei Qian and Youling Yue and Jing Tang and Sihan Jiao},
  journal= {arXiv preprint arXiv:2112.12644},
  year   = {2021}
}

Comments

3 figures, 1 table, Nature accepted