New evidence for chemical fractionation of radioactive xenon precursors in fission chains

  • A. P. Meshik
  • , O. V. Pravdivtseva
  • , C. M. Hohenberg

Research output: Contribution to journalArticlepeer-review

Abstract

Mass-spectrometric analyses of Xe released from acid-treated U ore reveal that apparent Xe fission yields significantly deviate from the normal values. The anomalous Xe structure is attributed to chemically fractionated fission (CFF), previously observed only in materials experienced neutron bursts. The least retentive CFF-Xe isotopes, Xe136 and Xe134, typically escape in 2:1 proportion. Xe retained in the sample is complimentarily depleted in these isotopes. This nucleochemical process allows understanding of unexplained Xe isotopic structures in several geophysical environments, which include well gasses, ancient anorthosite, some mantle rocks, as well as terrestrial atmosphere. CFF is likely responsible for the isotopic difference in Xe in the Earth's and Martian atmospheres and it is capable of explaining the relationship between two major solar system Xe carriers: the Sun and phase-Q, found in meteorites.

Original languageEnglish
Article number044614
JournalPhysical Review C
Volume93
Issue number4
DOIs
StatePublished - Apr 21 2016

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