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May 8, 2026Science Advances1 citationsOpen Access

Generation of carbonated peridotite melts via biogenic sediment recycling in modern subduction zones

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CECarlos Errázuriz-HenaoAGArturo Gómez‐TuenaMWMarion Weber

Key Points

  • This research aims to understand how carbonate-rich biogenic sediments affect melting processes in modern subduction zones.
  • Investigated geochemistry of Quaternary rear-arc monogenetic volcanoes in Colombia.
  • Analyzed the influence of subducted biogenic sediments on mantle composition and melt generation.
  • Proposed a model relating sediment partial melting to carbon cycle regulation and mantle diversity.
  • Colombian volcanoes show compositions resembling intraplate carbonated peridotite melts, indicating the influence of subducted sediments.
  • Sediment partial melting produces carbonate- and apatite-rich components contributing to mantle heterogeneity.
  • Findings establish a direct connection between biogeochemical cycles and the evolution of Earth's solid materials.

Abstract

The subduction of carbonate-rich biogenic sediments influences Earth’s carbon cycle and regulates long-term climate. Yet, the processes controlling their behavior at the subduction interface remain debated. Here, we investigate the role of carbonate subduction through the petrogenesis of Quaternary rear-arc monogenetic volcanoes in Colombia. These volcanoes display unusual compositions resembling intraplate carbonated peridotite melts and experimental melts from peridotite + CO 2 systems. Their geochemistry reflects an anomalous mantle source modified by subducted sediments from the Panama Basin, a large-scale region of high primary productivity and carbonate accumulation. However, pristine subducted sediments alone cannot explain the full compositional range of rear-arc Colombian lavas. Instead, we propose that sediment partial melting beneath the arc front produces carbonate- and apatite-rich restites that act as a recycled carbonated component, contributing to mantle chemical heterogeneity. This model helps explain the geochemical diversity of mantle-derived intraplate lavas and establishes a direct link between biogeochemical cycles, subduction, and the evolution of the solid Earth.

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Cite This Study

Errázuriz-Henao et al. (2026) studied this question.

synapsesocial.com/papers/69fd7ec6bfa21ec5bbf0717ehttps://doi.org/10.1126/sciadv.aec1599
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