Asymmetric, variable H alpha line profile in planetary mass object SR 12 c

arXiv:2607.28924 · astro-ph.EP, astro-ph.SR · Submitted 2026-07-31 · Read on arXiv

Jun Hashimoto, Yuhiko Aoyama, Michihiro Takami, Shinsuke Takasao

astro-ph.EP, astro-ph.SR

Submitted: 2026-07-31

Comments: 10 pages, 2 figures, accepted to AAS Astronomical Journal

License: http://creativecommons.org/licenses/by/4.0/

The gist: Young, forming planetary-mass objects often exhibit clear signatures of ongoing mass accretion and are thought to accrete material through processes analogous to those operating in young stars.

Terminology

Abstract

Young, forming planetary-mass objects often exhibit clear signatures of ongoing mass accretion and are thought to accrete material through processes analogous to those operating in young stars. In this study, we present high-spectral-resolution observations of asymmetric and time-variable H alpha line profiles from the planetary-mass companion SR 12 c. The H alpha line was observed at a resolving power of R about 49,000 --40, 000 (corresponding to 6.1--7.5 km s-1) using the High Dispersion Spectrograph (HDS) on the 8.2 m Subaru Telescope. Strong H alpha emission is clearly detected, while higher-order Balmer lines (H beta, H gamma, and H delta) are not detected due to their faintness. The H alpha line profiles are well spectrally resolved and exhibit blueshifted emission peaks, which can be interpreted as arising from either (a) emission partially absorbed by redshifted accreting material along the line of sight and/or (b) geometric occultation by the inner circumplanetary disk. Moreover, the H alpha flux shows significant variability at 43.6 plus or minus 6.4 % relative to the peak flux on hourly timescales. During a continuous 2.5-hour observing sequence, the emission component peaking at approximately-30 km s-1 weakened over the first hour. Subsequently, an emission component centered near-10 km s-1 became dominant and remained stable for the remaining 1.5 hours. We discuss possible interpretations of this behavior. Overall, these results support that magnetospheric accretion is operating in the planetary-mass object SR 12 c while a scenario combining boundary-layer accretion with a failed wind cannot be ruled out.

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