期刊
MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY
卷 484, 期 2, 页码 2587-2604出版社
OXFORD UNIV PRESS
DOI: 10.1093/mnras/sty3323
关键词
stars: abundances; stars: evolution; supernovae: general; ISM: abundances; dust,extinction; galaxies: ISM
资金
- European Research Council under the European Union [306476]
- PRIN INAF (2014): Transient Universe: unveiling new types of stellar explosions with PESSTO
- ESOVisitor Program 2017-2018
- Oitalian grant 'Premiale 2015 MITiC'
- Oitalian grant 'Premiale 2015 FIGARO'
- European Research Council (ERC) [306476] Funding Source: European Research Council (ERC)
Supernovae (SNe) are considered to have a major role in dust enrichment of high-redshift galaxies and, due to the short lifetimes of interstellar grains, in dust replenishment of local galaxies. Mere we explore how SN dust yields depend on the mass, metallicity, and rotation rate of the progenitor stars, and on the properties of the explosion. To this aim, assuming uniform mixing inside the ejecta, we quantify the dust mass produced by a sample of SN models with progenitor masses 13 M-circle dot <= M <= 120 M-circle dot, metallicity -3 <= [Fe/H] <= 0, rotation rate v(rot) = 0, and 300 km s(-1), that explode with a fixed energy of 1.2 x 10(51)erg (FE models) or with explosion properties calibrated to reproduce the Ni-56-M relation inferred from SN observations (CE models). We find that rotation favours more efficient dust production, particularly for more massive, low-metallicity stars, but that metallicity and explosion properties have the largest effects on the dust mass and its composition. In FE models, SNe with M <= 20 -25 M-circle dot are more efficient at forming dust: between 0.1 and 1 M-circle dot is formed in a single explosion, with a composition dominated by silicates, carbon, and magnetite grains when [Fe/H] = 0, and by carbon and magnetite grains when [Fe/H] < 0. In CE models, the ejecta are massive and metal-rich and dust production is more efficient. The dust mass increases with M and it is dominated by silicates, at all [Fe/H].
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