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April 23, 2026National Science Review2 citationsOpen Access

Soil carbon residence time regulates the age of dissolved organic matter in global rivers

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ZLZhaohui LiuYZYongqiang ZhouGRGerard Rocher‐Ros

Key Points

  • To investigate the global patterns of dissolved organic carbon (DOC) and its age in river systems.
  • Integrated a global dataset on riverine DOC concentration and isotopic signatures.
  • Employed machine learning to generate a global atlas of river DOC characteristics.
  • Analyzed the correlation between river DOC and soil organic carbon isotopic values.
  • Global average DOC has a Δ14C value of –22.5‰, corresponding to a radiocarbon age of 221 years.
  • High-latitude rivers show much older DOC with Δ14C values ranging from –353‰ to –78‰.
  • The predominant source of DOC is contemporary terrestrial production, contributing over 80% globally.

Abstract

Abstract Riverine dissolved organic carbon (DOC) constitutes a pivotal component in the Earth’s carbon cycle, yet little is known about the global patterns, sources, and factors governing lotic DOC. Here, we integrate a global dataset and employ machine learning to generate a global atlas of riverine DOC concentration and its radiocarbon (Δ14C) and stable-carbon (δ13C) isotopic signatures. Globally, riverine DOC has an average Δ14C value of –22.5 ± 144.0‰ (radiocarbon age of 221 years), with fossil carbon contributing a minor fraction (6.7 ± 3.0%). Terrestrial and autochthonous riverine production are the dominant DOC sources (80%) at the global scale, with contemporary terrestrial DOC predominant in tropical rivers and within-river production prominent in those within temperate and semi-arid regions. Rivers draining high-latitude regions and high-elevation sites have the lowest Δ14C values (–353‰ to –78‰; ages between 3400 and 600 years). River Δ14C-DOC values correlate with soil organic carbon and riverine particulate organic carbon Δ14C values, but river DOC has much higher Δ14C values than subsurface soils indicating that riverine DOC originates from surface rather than subsurface soils. Because warming mobilizes aged organic carbon from permafrost soils, export to and processing of old carbon in recipient aquatic systems may accelerate with climate change.

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Cite This Study

Liu et al. (2026) studied this question.

synapsesocial.com/papers/69e9baeb85696592c86ecd92https://doi.org/10.1093/nsr/nwag237
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