Runaway origins of a disc mass gradient in $σ$ Orionis

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Coleman, Gavin A. L., Haworth, Thomas J., Kim, Jinyoung Serena
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866914054027608064
author Coleman, Gavin A. L.
Haworth, Thomas J.
Kim, Jinyoung Serena
author_facet Coleman, Gavin A. L.
Haworth, Thomas J.
Kim, Jinyoung Serena
contents Radiation from massive stars is known to significantly affect the evolution of protoplanetary discs around surrounding stars by driving external photoevaporative winds. Typically most studies assume that the massive stars driving these winds are comoving with their associated clusters. However, it is also known that massive stars can be runaways, after being violently ejected from their birth environment through interactions with other massive stars. In this letter, we show that the well studied system $σ~{\rm Ori~AB}$ is actually a runaway system, only now passing through $σ~{\rm Orionis}$. There are multiple observable features that indicate this is the case, including significantly larger proper motions for $σ~{\rm Orionis}$ than the surrounding stars, an infrared arc of ionising gas along the predicted velocity vector, and a disparity in protoplanetary disc masses across $σ~{\rm Orionis}$. We finally use protoplanetary disc evolution models to explain the observed disparity in disc masses, showing that those discs downstream of $σ~{\rm Ori~AB}$, i.e. those yet to encounter it, have larger masses than those upstream, consistent with observations. Overall, our work highlights the importance of understanding the dynamical history of star forming regions, since the time varying UV fields provided by runway stars results in a complex history for the evolution of the protoplanetary discs.
format Preprint
id arxiv_https___arxiv_org_abs_2509_20227
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Runaway origins of a disc mass gradient in $σ$ Orionis
Coleman, Gavin A. L.
Haworth, Thomas J.
Kim, Jinyoung Serena
Earth and Planetary Astrophysics
Solar and Stellar Astrophysics
Radiation from massive stars is known to significantly affect the evolution of protoplanetary discs around surrounding stars by driving external photoevaporative winds. Typically most studies assume that the massive stars driving these winds are comoving with their associated clusters. However, it is also known that massive stars can be runaways, after being violently ejected from their birth environment through interactions with other massive stars. In this letter, we show that the well studied system $σ~{\rm Ori~AB}$ is actually a runaway system, only now passing through $σ~{\rm Orionis}$. There are multiple observable features that indicate this is the case, including significantly larger proper motions for $σ~{\rm Orionis}$ than the surrounding stars, an infrared arc of ionising gas along the predicted velocity vector, and a disparity in protoplanetary disc masses across $σ~{\rm Orionis}$. We finally use protoplanetary disc evolution models to explain the observed disparity in disc masses, showing that those discs downstream of $σ~{\rm Ori~AB}$, i.e. those yet to encounter it, have larger masses than those upstream, consistent with observations. Overall, our work highlights the importance of understanding the dynamical history of star forming regions, since the time varying UV fields provided by runway stars results in a complex history for the evolution of the protoplanetary discs.
title Runaway origins of a disc mass gradient in $σ$ Orionis
topic Earth and Planetary Astrophysics
Solar and Stellar Astrophysics
url https://arxiv.org/abs/2509.20227