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Published October 29, 2013 | Published + Erratum
Journal Article Open

Theory of mass-independent fractionation of isotopes, phase space accessibility, and a role of isotopic symmetry

Abstract

Key experimental and theoretical features of mass-independent fractionation (MIF) of isotopes, also known as the η-effect, are summarized, including its difference from the exit channel zero-point energy difference effect. The latter exactly cancels in the MIF. One key experimental result is that the MIF for O_3 formation is a low-pressure phenomenon and, moreover, that it decreases with increasing pressure of third bodies at pressures far below the "Lindemann fall-off" pressures for three-body recombination of O and O_2. A possible origin of the MIF is discussed in terms of a role for isotopologue symmetry in intramolecular energy sharing. An explanation is suggested for the large difference in the fall-off pressure for recombination and the pressure for a large decrease in MIF, in terms of a difference between deactivating collisions and what we term here "symmetry-changing collisions". It is noted that the theory of the MIF involves four recombination rate constants and an equilibrium constant, for each trace isotope, seven rate constants in all and two equilibrium constants. A conceptual shortcut is noted. Experimental and computational information that may provide added insight into the MIF mechanism and tests is described.

Additional Information

© 2013 National Academy of Sciences. Edited by Mark H. Thiemens, University of California at San Diego, La Jolla, CA, and approved May 17, 2013 (received for review February 13, 2013). Author contributions: R.A.M. performed research and wrote the paper. The author declares no conflict of interest. This article is a PNAS Direct Submission. I thank Dr. Nima Ghaderi for extensive discussions on the results of his classical trajectory computations for ozone that have investigated different types of nonstatistical behavior. This research was supported in part by the National Science Foundation.

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Published - PNAS-2013-Marcus-17703-7.pdf

Erratum - 18023.2.full.pdf

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