Survival of presolar <i>p</i>-nuclide carriers in the nebula revealed by stepwise leaching of Allende refractory inclusions.

Charlier, Bruce L A; Tissot, François L H; Vollstaedt, Hauke; Dauphas, Nicolas; Wilson, Colin J N; Marquez, Ren T · Sci Adv · 2021

basic_science · Level V

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Abstract

The <sup>87</sup>Rb-<sup>87</sup>Sr radiochronometer provides key insights into the timing of volatile element depletion in planetary bodies, yet the unknown nucleosynthetic origin of Sr anomalies in Ca-Al-rich inclusions (CAIs, the oldest dated solar system solids) challenges the reliability of resulting chronological interpretations. To identify the nature of these Sr anomalies, we performed step-leaching experiments on nine unmelted CAIs from Allende. In six CAIs, the chemically resistant residues (0.06 to 9.7% total CAI Sr) show extreme positive μ<sup>84</sup>Sr (up to +80,655) and <sup>87</sup>Sr variations that cannot be explained by decay of <sup>87</sup>Rb. The extreme <sup>84</sup>Sr but more subdued <sup>87</sup>Sr anomalies are best explained by the presence of a presolar carrier enriched in the <i>p</i>-nuclide <sup>84</sup>Sr. We argue that this unidentified carrier controls the isotopic anomalies in bulk CAIs and outer solar system materials, which reinstates the chronological significance of differences in initial <sup>87</sup>Sr/<sup>86</sup>Sr between CAIs and volatile-depleted inner solar system materials.