K-band High-Resolution Spectroscopy of Embedded Massive Protostars
Abstract
A classical paradox in high-mass star formation is that powerful radiation pressure can halt accretion, preventing further growth of a central star. Disk accretion has been proposed to solve this problem, but the disks and the accretion process in high-mass star formation are poorly understood. We executed high-resolution (=35,000-70,000) iSHELL spectroscopy in -band for eleven high-mass protostars. Br- emission was observed toward eight sources, and the line profiles for most of these sources are similar to those of low-mass PMS stars. Using an empirical relationship between the Br- and accretion luminosities, we tentatively estimate disk accretion rates ranging from 10 and 10 yr. These low-mass-accretion rates suggest that high-mass protostars gain more mass via episodic accretion as proposed for low-mass protostars. Given the detection limits, CO overtone emission (=2-0 and 3-1), likely associated with the inner disk region ( au), was found towards two sources. This low-detection rate compared with Br- emission is consistent with previous observations. Ten out of the eleven sources show absorption at the =0-2 CO R-branch. Most of them are either blueshifted or redshifted, indicating that the absorption is associated with an outflow or an inflow with a velocity of up to km s. Our analysis indicates that the absorption layer is well thermalized (and therefore cm) at a single temperature of typically 100-200 K, and located within 200-600 au of the star.
Cite
@article{arxiv.2103.07958,
title = {K-band High-Resolution Spectroscopy of Embedded Massive Protostars},
author = {Tien-Hao Hsieh and Michihiro Takami and Michael S. Connelley and Sheng-Yuan Liu and Yu-Nung Su and Naomi Hirano and Motohide Tamura and Masaaki Otsuka and Jennifer L. Karr and Tae-Soo Pyo},
journal= {arXiv preprint arXiv:2103.07958},
year = {2021}
}
Comments
18 page, 7 figures, accepted to ApJ