Published June 1976 | Version v1
Journal article

Primordial 129Xe in meteorites

  • 1. Washington Univ., St. Louis, Mo. (USA)

Description

Xenon isotopic analyses by stepwise heating are presented for two neutron-irradiated chondrites, Arapahoe (L5) and Bjurboele (L4). The iodine-xenon formation age of Arapahoe is the oldest yet observed, 9.9+-0.8 m.y. before that of Bjurboele. It is thus unlikely that younger ages found in carbonaceous chondrite magnetite record the condensation of the solar nebula. The composition of trapped xenon in Arapahoe is normal except for a deficiency of 129Xe, where it is inferred 129Xe/132Xe=0.56+-0.04, well below the apparent primordial solar system value. This need not conflict with higher values in other metamorphosed meteorites since growth of 129Xe from decay of 129I in xenon-depleted environments can be substantial. The contrast with apparent average solar system composition cannot be easily explained, however, since there is no way to generate one composition from the other. The simplest way to achieve low 129Xe seems to be to suppose that before decay to 129Xe r-process production at mass 129 condensed into dust as 129I, and that Arapahoe's parent body formed in a region of the solar system substantially depleted of this dust before any isotopic homogenization by vaporization of the remaining dust. Arapahoe is not unique in having trapped 129Xe-deficient xenon, nor in any other respect yet observed, so some such history evidently characterizes major groups of meteorites. (Auth.)

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Identifiers

Publishing Information

Journal Title
Earth and Planetary Science Letters
Journal Volume
31
Journal Issue
1
Series
Earth Planet. Sci. Lett.
Journal Page Range
15-30
ISSN
0012-821X

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