Metal-poor single Wolf-Rayet stars: The interplay of optically thick winds and rotation

Fuente: arXiv
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Autori principali: Boco, Lumen, Mapelli, Michela, Sander, Andreas A. C., Mesini, Sofia, Ramachandran, Varsha, Torniamenti, Stefano, Korb, Erika, Liu, Boyuan, Sabhahit, Gautham N., Vink, Jorick S.
Natura: Preprint
Pubblicazione: 2025
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author Boco, Lumen
Mapelli, Michela
Sander, Andreas A. C.
Mesini, Sofia
Ramachandran, Varsha
Torniamenti, Stefano
Korb, Erika
Liu, Boyuan
Sabhahit, Gautham N.
Vink, Jorick S.
author_facet Boco, Lumen
Mapelli, Michela
Sander, Andreas A. C.
Mesini, Sofia
Ramachandran, Varsha
Torniamenti, Stefano
Korb, Erika
Liu, Boyuan
Sabhahit, Gautham N.
Vink, Jorick S.
contents The Small Magellanic Cloud (SMC) hosts 12 known Wolf-Rayet (WR) stars, seven of which are apparently single. Their formation is a challenge for current stellar evolution models because line-driven winds are generally assumed to be quenched at a metallicity of Z < 0.004. Here, we present a set of mesa models of single stars with zero-age main sequence masses of 20 - 80 Msun considering different initial rotation speeds (Ω = 0 - 0.7 Ω_c), metallicities (Z = 0.002 - 0.0045), and wind mass-loss models (optically thin and thick winds). We show that if we account for optically thick winds, fast rotating (Ω = 0.6 Ω_c) single metal-poor O-type stars (with M > 20 Msun) shed their envelope and become WR stars even at the low metallicity of the SMC. The luminosity, effective temperature, evolutionary timescale, surface abundance, and rotational velocity of our simulated WR stars are compatible to the WRs observed in the SMC. We speculate that this scenario can also alleviate the excess of giant stars across the Humphreys-Davidson limit. Our results have key implications for black hole masses, (pair instability) supernova explosions, and other observable signatures.
format Preprint
id arxiv_https___arxiv_org_abs_2507_00137
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Metal-poor single Wolf-Rayet stars: The interplay of optically thick winds and rotation
Boco, Lumen
Mapelli, Michela
Sander, Andreas A. C.
Mesini, Sofia
Ramachandran, Varsha
Torniamenti, Stefano
Korb, Erika
Liu, Boyuan
Sabhahit, Gautham N.
Vink, Jorick S.
Solar and Stellar Astrophysics
The Small Magellanic Cloud (SMC) hosts 12 known Wolf-Rayet (WR) stars, seven of which are apparently single. Their formation is a challenge for current stellar evolution models because line-driven winds are generally assumed to be quenched at a metallicity of Z < 0.004. Here, we present a set of mesa models of single stars with zero-age main sequence masses of 20 - 80 Msun considering different initial rotation speeds (Ω = 0 - 0.7 Ω_c), metallicities (Z = 0.002 - 0.0045), and wind mass-loss models (optically thin and thick winds). We show that if we account for optically thick winds, fast rotating (Ω = 0.6 Ω_c) single metal-poor O-type stars (with M > 20 Msun) shed their envelope and become WR stars even at the low metallicity of the SMC. The luminosity, effective temperature, evolutionary timescale, surface abundance, and rotational velocity of our simulated WR stars are compatible to the WRs observed in the SMC. We speculate that this scenario can also alleviate the excess of giant stars across the Humphreys-Davidson limit. Our results have key implications for black hole masses, (pair instability) supernova explosions, and other observable signatures.
title Metal-poor single Wolf-Rayet stars: The interplay of optically thick winds and rotation
topic Solar and Stellar Astrophysics
url https://arxiv.org/abs/2507.00137