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The lowest detected stellar Fe abundance: The halo star SMSS J160540.18-144323.1

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arxiv 1904.07471 v1 pith:T7OWHIIF submitted 2019-04-16 astro-ph.SR astro-ph.GA

The lowest detected stellar Fe abundance: The halo star SMSS J160540.18-144323.1

classification astro-ph.SR astro-ph.GA
keywords starstarsabundanceabundancesdetectedenhancementhaloj160540
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We report the discovery of SMSS J160540.18-144323.1, a new ultra-metal poor halo star discovered with the SkyMapper telescope. We measure [Fe/H] = -6.2 +- 0.2 (1D LTE), the lowest ever detected abundance of iron in a star. The star is strongly carbon-enhanced, [C/Fe] = 3.9 +- 0.2, while other abundances are compatible with an alpha-enhanced solar-like pattern with [Ca/Fe] = 0.4 +- 0.2, [Mg/Fe] = 0.6 +- 0.2, [Ti/Fe] = 0.8 +- 0.2, and no significant s- or r-process enrichment, [Sr/Fe] < 0.2 and [Ba/Fe] < 1.0 (3{\sigma} limits). Population III stars exploding as fallback supernovae may explain both the strong carbon enhancement and the apparent lack of enhancement of odd-Z and neutron-capture element abundances. Grids of supernova models computed for metal-free progenitor stars yield good matches for stars of about 10 solar mass imparting a low kinetic energy on the supernova ejecta, while models for stars more massive than roughly 20 solar mass are incompatible with the observed abundance pattern.

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Cited by 2 Pith papers

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  1. The complex stellar system M 22: constraining the chemical enrichment from AGB stars using magnesium isotope ratios

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    First Mg isotope measurements at [Fe/H]≈-2 in a globular cluster show no difference tied to s-process enrichment, favoring ~2.75 M_sun AGB polluters and a 280–480 Myr age gap.

  2. The complex stellar system M 22: confirming abundance variations with high precision differential measurements

    astro-ph.GA 2026-07 conditional novelty 6.0

    High-precision differential abundances confirm M 22 hosts a >0.24 dex iron spread and ~0.65 dex s-process spread, and reveal new internal abundance variations within each population.