论文标题

XENON同位素识别太阳系跨太阳系的大规模核合成异质性

Xenon Isotopes Identify Large-scale Nucleosynthetic Heterogeneities across the Solar System

论文作者

Avice, Guillaume, Moreira, Manuel, Gilmour, Jamie D

论文摘要

陨石和行星物体中的核合成同位素异常有助于我们理解太阳系的形成。软骨的同位素系统学证明了太阳系中同位素储层之间存在物理分离。大气氙(XE)的同位素组成表明其祖细胞U-XE在134xE和136xE同位素相对于太阳或软骨末端成员中耗尽。这种赤字支持这样的观点,即在太阳系形成期间核合成异质性持续存在。从67p/churyumov-Gerasimenko(67p)发出的氙气测量值确定了这些同位素相对于太阳能气体的相似但更极端的彗星气体赤字。在这里,我们表明来自67p的数据表明,两个不同的来源贡献了与R-Process与太阳系相关的XENON同位素。 H过程至少贡献了太阳系136X的至少29%(2sigmum)。这些R过程组件的混合物和与Cometary Xe的重型同位素特征相匹配的S过程会导致大气XE前体的耗尽。只有在同位素混合物中添加纯P-Process XE才能将124xE/132XE和126XE/132XE比率带回太阳能值。在太阳系材料中尚未检测到纯P过程,并且P过程XE同位素的变化始终与R-Process XE同位素的变化相关。在太阳系中,星际介质中的P过程掺入之前,在将R过程核素或太阳系外边缘的材料掺入材料之前,携带了与父体中保留的前极源混合物。

Nucleosynthetic isotopic anomalies in meteorites and planetary objects contribute to our understanding of the formation of the solar system. Isotope systematics of chondrites demonstrate the existence of a physical separation between isotopic reservoirs in the solar system. The isotopic composition of atmospheric xenon (Xe) indicates that its progenitor, U-Xe, is depleted in 134Xe and 136Xe isotopes relative to Solar or Chondritic end-members. This deficit supports the view that nucleosynthetic heterogeneities persisted during the Solar System formation. Measurements of xenon emitted from comet 67P/Churyumov-Gerasimenko (67P) identified a similar, but more extreme, deficit of cometary gas in these isotopes relative to Solar gas. Here we show that the data from 67P demonstrate that two distinct sources contributed xenon isotopes associated with the r-process to the solar system. The h-process contributed at least 29% (2sigmas) of solar system 136Xe. Mixtures of these r-process components and the s-process that match the heavy isotope signature of cometary Xe lead to depletions of the precursor of atmospheric Xe in p-only isotopes. Only the addition of pure p-process Xe to the isotopic mixture brings 124Xe/132Xe and 126Xe/132Xe ratios back to solar-like values. No pure p-process Xe has been detected in solar system material, and variation in p-process Xe isotopes is always correlated with variation in r-process Xe isotopes. In the solar system, p-process incorporation from the interstellar medium happened before incorporation of r-process nuclides or material in the outer edge of the solar system carries a different mixture of presolar sources as have been preserved in parent bodies.

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