科研速览 · Science Skim继续刷下去 · Keep skimming →
◆ The Astrophysical Journal2026-06-12· Physics

Characterizing the Extended Molecular Hydrogen Winds in Protoplanetary Disks from the JWST Disk Infrared Spectroscopic Chemistry Survey

Mayank Narang, K. M. Pontoppidan, Colette Salyk, Nicole Arulanantham, Geoffrey A. Blake, Andrea Banzatti, Joan Najita, Ilaria Pascucci, Jane Huang, Sebastiaan Krijt, Karin I. Öberg, Giovanni Rosotti, Till Kaeufer, Emma Dahl, L. Ilsedore Cleeves, Ke Zhang, Joel D. Green

原始摘要(英文原文)· Original abstract
Abstract We present a comprehensive analysis of extended H 2 emission from 34 protoplanetary disks observed with the JWST Disk Infrared Spectroscopic Chemistry Survey, supplemented by archival data. We investigated the morphology, kinematics, excitation conditions, and mass dynamics of H 2 . Extended emission from pure rotational H 2 lines is found to be common, with 16 sources exhibiting clear signatures of disk winds. These include monopolar and bipolar structures in inclined disks and ring-like or bubble-like morphologies in face-on system features, indicative of wide-angle disk winds. Our analysis shows that the H 2 is consistent with slow (4.2 − 3.0 + 6.7 km s −1 ) magnetohydrodynamical driven winds. For 10 disks, we model the wind morphology and find a median half-opening angle of 4 5 − 4 ° + 5 and a characteristic power-law index of α ∼ 1.6. Excitation analysis yields a median gas temperature of 624 ± 130 K and a column density of log ( N tot [ cm − 2 ] ) = 18.6 ± 0.6 . The median wind mass-loss rate, log 10 ( M ̇ wind tot ) = − 9 − 0.4 + 0.8 M ⊙ yr − 1 , implies that if molecular winds are the dominant mechanism responsible for disk dispersal, a typical disk with a mass of 2–3 M Jup would dissipate on a ∼2–3 Myr timescale, consistent with observed disk lifetimes. The M ̇ wind tot span a relatively narrow range (∼2 dex) and do not correlate strongly with accretion rates onto the star, suggesting that the mass-loss rate and the accretion rates are probing different timescales. Our findings demonstrate that spatially extended warm H 2 emission is a widespread and reliable tracer of molecular disk winds in protoplanetary systems.
读原文 · Read the paper ↗

AI 追问PRO

登录后使用 AI 追问

讨论区

登录后参与讨论

相关论文 · Related

Characterizing the Extended Molecular Hydrogen Winds in Protoplanetary Disks from the JWST Disk Infrared Spectroscopic Chemistry Survey — 科研速览 Science Skim