Subduction modulated the long-term oxygenation of Earth’s surface

W Wei Shi C Chao Li B Benjamin J. W. Mills (School of Earth and Environment, University of Leeds) M Michael Brown (Laboratory for Crustal Petrology, Department of Geological, Environmental, and Planetary Sciences, University of Maryland) T Tim E. Johnson (Curtin Frontier Institute for Geoscience Solutions (CFIGS), School of Earth and Planetary Sciences, Curtin University, Perth, WA, Australia.) T Thomas J. Algeo (Department of Geosciences, University of Cincinnati) M Mingcai Hou C Chunlian Wang (Ministry of Natural Resources Key Laboratory of Metallogeny and Mineral Assessment, Institute of Mineral Resources, Chinese Academy of Geological Sciences) M Mingyu Zhao (Beijing Key Laboratory of Green Chemical Reaction Engineering and Technology, Department of Chemical Engineering) S Simon W. Poulton (School of Earth, Environment and Sustainability, University of Leeds)

Abstract

On Earth, atmospheric oxygen is inferred to have risen over three major intervals before reaching modern levels, with each interval having a profound impact on the evolution of the biosphere. However, the principal driver behind these stepwise increases remains elusive. Here, we compile metamorphic thermobaric ratios ( T / P ) through time and use them as a first-order, probabilistic proxy for the likelihood of “cold” subduction (i.e., with T / P < 375 °C GPa –1 ) during secular cooling of Earth’s mantle. Then, we couple this tectonic forcing to biogeochemical modeling to test whether more efficient cold subduction may have enhanced the net transfer of reduced organic carbon and pyrite to Earth’s deep interior, thereby diminishing oxygen sinks and allowing surface oxygen levels to increase at geological timescales. Modeling results indicate that the progressive emergence of cold subduction could plausibly have contributed to the long-term oxygenation trajectory and associated secular trends in atmospheric carbon dioxide, seawater sulfate, sedimentary phosphorus, and marine redox conditions. Although the absolute magnitudes remain uncertain, the predicted trajectory of surface oxygenation is qualitatively consistent with the broad three-step pattern inferred from geochemical proxies. We propose that the progressive evolution of subduction may have been a key driver of long-term surface oxygenation, linking mantle cooling to the rise of conditions favorable for aerobic lifeforms.

Article Details

Volume / Issue Vol. 123, Issue 22
Published June 02, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (10)

W

Wei Shi

C

Chao Li

B

Benjamin J. W. Mills

School of Earth and Environment, University of Leeds

M

Michael Brown

Laboratory for Crustal Petrology, Department of Geological, Environmental, and Planetary Sciences, University of Maryland

T

Tim E. Johnson

Curtin Frontier Institute for Geoscience Solutions (CFIGS), School of Earth and Planetary Sciences, Curtin University, Perth, WA, Australia.

T

Thomas J. Algeo

Department of Geosciences, University of Cincinnati

M

Mingcai Hou

C

Chunlian Wang

Ministry of Natural Resources Key Laboratory of Metallogeny and Mineral Assessment, Institute of Mineral Resources, Chinese Academy of Geological Sciences

M

Mingyu Zhao

Beijing Key Laboratory of Green Chemical Reaction Engineering and Technology, Department of Chemical Engineering

S

Simon W. Poulton

School of Earth, Environment and Sustainability, University of Leeds