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Updated: Sep 22, 2026

Measuring Carbon-based Contaminant Mineralization Using Combined CO2 Flux and Radiocarbon Analyses
Published on: October 21, 2016
Deep carbon cycling drives the splitting of the 520-km mantle discontinuity
Xinyue Zhang1,2, Wei Wei1,3, Youyue Zhang4
1State Key Laboratory of Precision Geodesy, School of Earth and Space Sciences, University of Science and Technology of China, Hefei, China.
Abstract:
Carbon cycling into Earth's deep interior regulates melting, redox state, and volatile transport, yet its imprint on mantle seismic structure remains unclear. A potential seismic expressure of deep carbon cycling is the sporadic splitting of the 520-km discontinuity, expressed as a secondary reflector near 560 km beneath slabs and mantle upwellings, has been attributed to davemaoite (CaSiO3) exsolution, although its shear-wave properties cannot produce the required 2-4% impedance contrast. We conduct high pressure-temperature experiments (~20 GPa, 1200-1600 °C) to determine how carbonate-altered oceanic crust reorganizes mantle layering. Here we show that carbonate addition drives Ca-Mg exchange with silicates, increases Ca incorporation into silicates under Fe-rich conditions, and enhances davemaoite exsolution. This process yields 12-33(2) vol.% davemaoite near ~ 560 km, sufficient to match impedance contrasts observed. Davemaoite-rich crust could be recycled by mantle plumes, accounting for the 560-km reflector beneath hot regions. Subducted carbonates thus reshape mineral equilibria, reinforce chemical stratification, and generate persistent seismic signatures of deep carbon cycling.
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