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April 19, 2026National Science Review1 citationsOpen Access

From manganese mineral evolution history to atmospheric oxygen reconstruction

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YLYan LiZZZiyi ZhuangXXXinran Xu

Key Points

  • The aim is to reconstruct Earth's atmospheric oxygen levels using a dataset of manganese minerals over geological time.
  • Built a global dataset of 144,200 manganese mineral entries across 25 dimensions.
  • Developed a URD deep-learning model to analyze the dataset.
  • Investigated the relationship between manganese mineral evolution and atmospheric oxygen levels.
  • Identified two modes of oxygenation linked to tectonic activities.
  • Noted a gradual increase in oxygen levels during the Paleoproterozoic-Mesoproterozoic.
  • Found a rapid rise in oxygen levels associated with supercontinent dynamics.

Abstract

Abstract The evolutionary record of redox-sensitive Mn minerals encodes critical information about Earth’s oxygenation history. By building a global Mn mineral dataset (144,200 entries across 25 feature dimensions), we developed a URD (Unequal-size feature matrix, Re-coupling relationship, Disaccord labels) deep-learning model to reconstruct continuous atmospheric oxygen level (pO2) changes over 4.0 billion years. Our results provide robust mineralogical evidence linking the timing and tempo of oxygenation to planetary-scale tectonics and biosphere evolution. Specially, the reconstruction reveals two distinct oxygenation modes: a protracted and gradual increase during the Paleoproterozoic-Mesoproterozoic, reflected in the moderately progressive evolution of Mn mineral assemblages; and a more rapid rise preceding and following the Neoproterozoic, coincided with supercontinent breakup and convergence, respectively−a pattern potentially driven by tectonic modulation of Mn supply and demand. This study introduces a mineral-informatic framework for decoding complex, high-dimensional mineral records, offering a transformative approach for systematically interrogating Earth’s long-term evolution.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69e47440010ef96374d90048https://doi.org/10.1093/nsr/nwag230
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