Probing Thin Winds in Massive OB Stars of the SMC with JWST/NIRSPEC Br-alpha Spectroscopy
arXiv:2509.02667 · doi:10.3847/2041-8213/adfa0f
Abstract
Mass loss is a key physical process in the evolution of massive stars, the impact of which propagates into galactic evolution, population synthesis models, the interpretation of high-redshift galaxies, and explosive events such as supernovae. However, there are currently substantial uncertainties in the low-metallicity, low-luminosity thin wind regime where classical diagnostics (H-alpha and ultraviolet, UV, P Cygni profiles) yield wind momenta that are 1 to 2 orders of magnitude below prescriptions implemented by default in most evolutionary models. Here, we present spectra of the mass-loss diagnostic line Br-alpha in 15 OB-type stars in the Small Magellanic Cloud obtained using the Near Infrared Spectrograph on the James Webb Space Telescope. The line profile morphology, recovered by virtue of the outstanding signal-to-noise ratio of the data and the avoidance of regions with nebular emission, is consistent with predictions based on previous mass-loss rate estimates from optical and UV spectroscopy. Moreover, an initial spectroscopic analysis of sources covering the thin wind regime confirms the low mass-loss rates, indicates a change of slope in the wind-momentum-luminosity relation in this regime with respect to high-luminosity objects, and strengthens the abovementioned discrepancies with commonly used wind-momentum prescriptions.
Accepted for publication in ApJ Letters
References in corpus (17)
- The Near-Infrared Spectrograph (NIRSpec) on the James Webb Space Telescope I. Overview of the instrument and its capabilities
- Mass loss from hot massive stars
- The empirical metallicity dependence of the mass-loss rate of O- and early B-type stars
- Neglecting the porosity of hot-star winds can lead to underestimating mass-loss rates
- Spitzer SAGE-SMC Infrared Photometry of Massive Stars in the Small Magellanic Cloud
- The VLT-FLAMES survey of massive stars: Mass loss and rotation of early-type stars in the SMC
- Testing massive star evolution, star-formation history and feedback at low metallicity : Spectroscopic analysis of OB stars in the SMC Wing
- The Physical Properties and Effective Temperature Scale of O-type Stars as a Function of Metallicity. III. More Results from the Magellanic Clouds
- Mass loss from inhomogeneous hot star winds III. An effective-opacity formalism for line radiative transfer in accelerating, clumped two-component media, and first results on theory and diagnostics
- X-Shooting ULLYSES: massive stars at low metallicity. I. Project Description
- No breakdown of the radiatively-driven wind theory in low-metallicity environments
- Massive stars in the Small Magellanic Cloud : Evolution, rotation and surface abundances
- Stellar wind properties of the nearly complete sample of O stars in the low metallicity young star cluster NGC346 in the SMC galaxy
- Wind properties of Milky Way and SMC massive stars: empirical Z dependence from CMFGEN models
- Shock-heated radiation-driven outflows as a solution to the weak-wind problem of late O-type stars
- Impact of main-sequence mass loss on the appearance, structure and evolution of Wolf-Rayet stars
- First JWST/NIRSpec Spectroscopy of O Stars in the Small Magellanic Cloud