Oxygen and magnesium mass-independent isotopic fractionation induced by chemical reactions in plasma
F. Robert, Marc Chaussidon, Adriana Gonzalez‐Cano, S. Mostefaoui
Abstract
F. Robert, Marc Chaussidon, Adriana Gonzalez‐Cano, S. Mostefaoui
Abstract
Significance Both the physical effect and the chemical conditions at the origin of the oxygen isotope variations in the solar system have been puzzling questions for 50 y. The data reported here bring the MIF effect (the mass-independent fractionation originally identified on ozone) back to the center of the debate. Similar to Ti isotopes, we observe that the MIF effect for O and Mg is triggered by redox reactions in plasmas. These observations reinforce the idea of a universal mechanism observable in photochemical reactions when molecular collisions involving indistinguishable isotopes yield a symmetrical complex stabilized as a chemical product.
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Significance Both the physical effect and the chemical conditions at the origin of the oxygen isotope variations in the solar system have been puzzling questions for 50 y. The data reported here bring the MIF effect (the mass-independent fractionation originally identified on ozone) back to the center of the debate. Similar to Ti isotopes, we observe that the MIF effect for O and Mg is triggered by redox reactions in plasmas. These observations reinforce the idea of a universal mechanism observable in photochemical reactions when molecular collisions involving indistinguishable isotopes yield a symmetrical complex stabilized as a chemical product.
Key concepts: Mass-independent fractionation, Chemistry, Fractionation, Oxygen, Kinetic isotope effect, Yield (engineering), Isotope, Chemical reaction