Precise initial abundance of Niobium-92 in the Solar System and implications for <i>p</i>-process nucleosynthesis.
basic_science · Level V
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- Record sourced from PubMed, PMID 33608458.
- Also identified by DOI 10.1073/pnas.2017750118 and PMC identifier 7923630.
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Abstract
The niobium-92-zirconium-92 (<sup>92</sup>Nb-<sup>92</sup>Zr) decay system with a half-life of 37 Ma has great potential to date the evolution of planetary materials in the early Solar System. Moreover, the initial abundance of the <i>p</i>-process isotope <sup>92</sup>Nb in the Solar System is important for quantifying the contribution of <i>p</i>-process nucleosynthesis in astrophysical models. Current estimates of the initial <sup>92</sup>Nb/<sup>93</sup>Nb ratios have large uncertainties compromising the use of the <sup>92</sup>Nb-<sup>92</sup>Zr cosmochronometer and leaving nucleosynthetic models poorly constrained. Here, the initial <sup>92</sup>Nb abundance is determined to high precision by combining the <sup>92</sup>Nb-<sup>92</sup>Zr systematics of cogenetic rutiles and zircons from mesosiderites with U-Pb dating of the same zircons. The mineral pair indicates that the <sup>92</sup>Nb/<sup>93</sup>Nb ratio of the Solar System started with (1.66 ± 0.10) × 10<sup>-5</sup>, and their <sup>92</sup>Zr/<sup>90</sup>Zr ratios can be explained by a three-stage Nb-Zr evolution on the mesosiderite parent body. Because of the improvement by a factor of 6 of the precision of the initial Solar System <sup>92</sup>Nb/<sup>93</sup>Nb, we can show that the presence of <sup>92</sup>Nb in the early Solar System provides further evidence that both type Ia supernovae and core-collapse supernovae contributed to the light <i>p</i>-process nuclei.