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The Iron Isotope Fingerprints of Redox and Biogeochemical Cycling in Modern and Ancient Earth

2008/04/29 by Clark M. Johnson, Brian L. Beard, Eric E. Roden +1 · 478 citations
Chemistry · Earth and Planetary Sciences · #Archean #Biogeochemical cycle #Chemistry #Early Earth #Earth (classical element) #Environmental chemistry #Geochemistry #Geochemistry and Elemental Analysis #Geology #Inorganic chemistry #Isotope #Mineralogy #Paleontology and Stratigraphy of Fossils #Radioactive element chemistry and processing #Redox #Sedimentary rock #Sulfate

paper · doi:10.1146/annurev.earth.36.031207.124139

published in Annual Review of Earth and Planetary Sciences 36(1), 457-493 (Annual Reviews)

openalex publication_date 2008/04/29 · openalex created_date 2025/10/10 · openalex updated_date 2026/07/25

Abstract

The largest Fe isotope fractionations occur during redox changes, as well as differences in bonding, but these are expressed only in natural environments in which significant quantities of Fe may be mobilized and separated. At the circumneutral pH of most low-temperature aqueous systems, Fe 2+ aq is the most common species for mobilizing Fe, and Fe 2+ aq has low 56 Fe/ 54 Fe ratios relative to Fe 3+ -bearing minerals. Of the variety of abiologic and biologic processes that involve redox or bonding changes, microbial Fe 3+ reduction produces the largest quantities of isotopically distinct Fe by several orders of magnitude relative to abiologic processes and hence plays a major role in producing Fe isotope variations on Earth. In modern Earth, the mass of Fe cycled through redox boundaries is small, but in the Archean it was much larger, reflecting juxtaposition of large inventories of Fe 2+ and Fe 3+ . Development of photosynthesis produced large quantities of Fe 3+ and organic carbon that fueled a major expansion in microbial Fe 3+ reduction in the late Archean, perhaps starting as early as ∼3 Ga. The Fe isotope fingerprint of microbial Fe 3+ reduction decreases in the sedimentary rock record between ∼2.4 and 2.2 Ga, reflecting increased bacterial sulfate reduction and a concomitant decrease in the availability of reactive iron to support microbial Fe 3+ reduction. The temporal C, S, and Fe isotope record therefore reflects the interplay of changing microbial metabolisms over Earth's history.

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