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A single low-energy, iron-poor supernova as the source of metals in the star SMSS J031300.36-670839.3

dc.contributor.authorKeller, S. C.
dc.contributor.authorBessell, M. S.
dc.contributor.authorFrebel, A.
dc.contributor.authorCasey, A. R.
dc.contributor.authorAsplund, Martin
dc.contributor.authorJacobson, H. R.
dc.contributor.authorLind, K.
dc.contributor.authorNorris, J. E.
dc.contributor.authorYong, D.
dc.contributor.authorHeger, A.
dc.contributor.authorMagic, Z.
dc.contributor.authorDa Costa, Gary
dc.contributor.authorSchmidt, Brian
dc.contributor.authorTisserand, Patrick
dc.date.accessioned2017-08-02T05:44:15Z
dc.date.issued2014-02-27
dc.description.abstractThe element abundance ratios of four low-mass stars with extremely low metallicities (abundances of elements heavier than helium) indicate that the gas out of which the stars formed was enriched in each case by at most a few--and potentially only one--low-energy supernova. Such supernovae yield large quantities of light elements such as carbon but very little iron. The dominance of low-energy supernovae seems surprising, because it had been expected that the first stars were extremely massive, and that they disintegrated in pair-instability explosions that would rapidly enrich galaxies in iron. What has remained unclear is the yield of iron from the first supernovae, because hitherto no star has been unambiguously interpreted as encapsulating the yield of a single supernova. Here we report the optical spectrum of SMSS J031300.36-670839.3, which shows no evidence of iron (with an upper limit of 10(-7.1) times solar abundance). Based on a comparison of its abundance pattern with those of models, we conclude that the star was seeded with material from a single supernova with an original mass about 60 times that of the Sun (and that the supernova left behind a black hole). Taken together with the four previously mentioned low-metallicity stars, we conclude that low-energy supernovae were common in the early Universe, and that such supernovae yielded light-element enrichment with insignificant iron. Reduced stellar feedback both chemically and mechanically from low-energy supernovae would have enabled first-generation stars to form over an extended period. We speculate that such stars may perhaps have had an important role in the epoch of cosmic reionization and the chemical evolution of early galaxies.en_AU
dc.description.sponsorshipAustralian access to the Magellan Telescopes was supported through the National Collaborative Research Infrastructure Strategy of the Australian Federal Government. M.A., M.S.B., A.R.C., G.D.C., S.K., J.E.N. and D.Y. acknowledge the support of Australian Research Council (grants DP120101237, DP0984924, DP0878137 and LF0992131). A.F. acknowledges support from NSF grant AST-1255160. A.R.C. acknowledges support from the Australian Prime Minister’s Endeavour Award Research Fellowship. K.L. acknowledges support fromthe European Union FP7 programme through ERC grant number 320360.en_AU
dc.format8 pagesen_AU
dc.format.mimetypeapplication/pdfen_AU
dc.identifier.issn0028-0836en_AU
dc.identifier.urihttp://hdl.handle.net/1885/122886
dc.sourceNatureen_AU
dc.titleA single low-energy, iron-poor supernova as the source of metals in the star SMSS J031300.36-670839.3en_AU
dc.typeJournal articleen_AU
dcterms.accessRightsOpen Accessen_AU
dcterms.dateAccepted2013-12-05
local.bibliographicCitation.issue7489en_AU
local.bibliographicCitation.lastpage466en_AU
local.bibliographicCitation.startpage463-6en_AU
local.contributor.affiliationThe Australian National University Library. Research School of Astronomy and Astrophysics, Mount Stromlo Observatoryen_AU
local.description.embargo2037-03-31
local.description.notesThe SkyMapper telescope was developed by B.P.S., G.S.D., M.S.B., P.T. and S.C.K. The SkyMapper data reduction procedure required to provide calibrated photometry from which the star was drawn was developed by S.C.K. M.S.B. obtained the intermediate-resolution spectrum and drew the target to the team’s attention. H.R.J., A.R.C., A.F. and S.C.K. obtained the high-resolution spectrum of the target, reduced the data and performed the chemical abundance analysis using the spectral analysis package developed by A.R.C. The MCMC calculations to provide the upper limit to [Fe/H] were performed by A.R.C. K.L. performed NLTE calculations, Z.M. and M.A. constructed the ,3D. atmosphere models, and A.H. the supernova models. B.P.S., A.H. and D.Y. contributed to supernova yields and MDF analysis. All authors discussed the results and commented on the manuscript.en_AU
local.identifier.citationvolume506en_AU
local.identifier.doi10.1038/nature12990en_AU
local.identifier.essn1476-4687en_AU
local.type.statusPublished Versionen_AU

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