AI Article Synopsis

  • The evolution of Earth's oxygen cycles has been shaped by the production and consumption of molecular oxygen, particularly during the Neoproterozoic-Paleozoic transition, which saw a significant rise in oxygen levels due to increased burial of organic carbon.
  • New research based on lithium isotopic data from marine mudstones indicates a sharp rise in continental clay formation after 525 million years ago, likely due to global climate changes and crust composition shifts.
  • A biogeochemical model suggests that enhanced continental weathering and increased clay delivery to oceans may have improved the burial of organic carbon, contributing to higher oxygen levels in the early Paleozoic oceans.

Article Abstract

The evolution of oxygen cycles on Earth's surface has been regulated by the balance between molecular oxygen production and consumption. The Neoproterozoic-Paleozoic transition likely marks the second rise in atmospheric and oceanic oxygen levels, widely attributed to enhanced burial of organic carbon. However, it remains disputed how marine organic carbon production and burial respond to global environmental changes and whether these feedbacks trigger global oxygenation during this interval. Here, we report a large lithium isotopic and elemental dataset from marine mudstones spanning the upper Neoproterozoic to middle Cambrian [~660 million years ago (Ma) to 500 Ma]. These data indicate a dramatic increase in continental clay formation after ~525 Ma, likely linked to secular changes in global climate and compositions of the continental crust. Using a global biogeochemical model, we suggest that intensified continental weathering and clay delivery to the oceans could have notably increased the burial efficiency of organic carbon and facilitated greater oxygen accumulation in the earliest Paleozoic oceans.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10980266PMC
http://dx.doi.org/10.1126/sciadv.adk2152DOI Listing

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