IPA: Morphology and Kinematics of Molecular Hydrogen Winds in Five Young Protostars across the Mass Spectrum Observed with JWST
Abstract
Molecular winds may play a key role in governing angular momentum transport and accretion during the early evolution of protostars. We present the morphology and kinematic properties of the H$_2$ emission in five young, envelope-dominated, protostars across a broad bolometric luminosity range, from 0.2 to $10^4~L_{\odot}$, observed with the NIRSpec/IFU and MIRI/MRS onboard JWST as part of the Investigating Protostellar Accretion (IPA) program. A rich set of pure rotational lines of H$_2$, up to ...
Description / Details
Molecular winds may play a key role in governing angular momentum transport and accretion during the early evolution of protostars. We present the morphology and kinematic properties of the H emission in five young, envelope-dominated, protostars across a broad bolometric luminosity range, from 0.2 to , observed with the NIRSpec/IFU and MIRI/MRS onboard JWST as part of the Investigating Protostellar Accretion (IPA) program. A rich set of pure rotational lines of H, up to S(18), and a few ro-vibrational lines are detected in the winds, revealing bipolar structures. The H lines show a stratified/onion-like structure morphologically and kinematically, where the lines with higher show a higher degree of collimation and higher velocities. Additionally, the wind velocity scales with the of the host protostellar system. In 4 out of 5 protostars, H emission fills the outflow cavity without showing pronounced limb brightening. We also report a tentative detection of H wind rotation in IRAS 16253, which suggests a launch radius of au and the magnetic lever arm parameter of . Taken together, these properties of the H winds can be explained by the magnetohydrodynamic disk wind models. We detect a collimated, high-velocity H jet toward HOPS 370, which is more evolved than the extremely young source HH 211, but is accreting at a high accretion rate. This suggests that the presence of collimated molecular jets in protostars is more closely connected to accretion rate than system age.
Source: arXiv:2608.09920v1 - http://arxiv.org/abs/2608.09920v1 PDF: https://arxiv.org/pdf/2608.09920v1 Original Link: http://arxiv.org/abs/2608.09920v1
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Aug 11, 2026
Space Science
Astrophysics
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