Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Organic Carbon Burial in Global Continental Margin Sediments

View through CrossRef
Abstract Continental margins, situated at the nexus of land and ocean, act as major burial hotspots for terrestrial and marine organic matter, creating a critical interface between the short-term carbon cycle and long-term geological storage. Although this burial largely regulates atmospheric CO₂, O₂ and thus climate, its magnitude and spatial distribution remain poorly constrained due to sparse observations and an extraordinary environmental variability. Here we present the first global, observation-constrained assessment of organic-carbon transfer and burial along the global continental margin, integrating observational data with spatial machine learning and three-dimensional reaction–transport modelling. We estimate a global organic-carbon transfer flux of 367 Tg C yr⁻¹ on centennial timescales, decreasing to 293 and 246 Tg C yr⁻¹ on millennial and multi-millennial scales. These results show that continental-margin sediments form one of Earth’s largest and most persistent long-term carbon sinks, exceeding lakes, reservoirs and all major vegetated coastal ecosystems combined. Burial is strongly heterogeneous, with ~70% occurring in the Northern Hemisphere and ~50% in equatorial regions, and with pronounced hotspots in tropical margins and marginal seas. These findings reduce a central uncertainty in the coastal carbon budget and thus refine global carbon cycle assessments, constrain ocean–atmosphere CO₂ exchange, and provide the first spatial framework to guide marine conservation, management, and climate policy.
Title: Organic Carbon Burial in Global Continental Margin Sediments
Description:
Abstract Continental margins, situated at the nexus of land and ocean, act as major burial hotspots for terrestrial and marine organic matter, creating a critical interface between the short-term carbon cycle and long-term geological storage.
Although this burial largely regulates atmospheric CO₂, O₂ and thus climate, its magnitude and spatial distribution remain poorly constrained due to sparse observations and an extraordinary environmental variability.
Here we present the first global, observation-constrained assessment of organic-carbon transfer and burial along the global continental margin, integrating observational data with spatial machine learning and three-dimensional reaction–transport modelling.
We estimate a global organic-carbon transfer flux of 367 Tg C yr⁻¹ on centennial timescales, decreasing to 293 and 246 Tg C yr⁻¹ on millennial and multi-millennial scales.
These results show that continental-margin sediments form one of Earth’s largest and most persistent long-term carbon sinks, exceeding lakes, reservoirs and all major vegetated coastal ecosystems combined.
Burial is strongly heterogeneous, with ~70% occurring in the Northern Hemisphere and ~50% in equatorial regions, and with pronounced hotspots in tropical margins and marginal seas.
These findings reduce a central uncertainty in the coastal carbon budget and thus refine global carbon cycle assessments, constrain ocean–atmosphere CO₂ exchange, and provide the first spatial framework to guide marine conservation, management, and climate policy.

Related Results

Epicontinental seas as efficient carbon sinks: proto-Paratethys & West Siberian seas during the PETM
Epicontinental seas as efficient carbon sinks: proto-Paratethys & West Siberian seas during the PETM
<p>Removal of carbon on geological timescales is generally assumed to be governed by the relative strength of silicate weathering and organic carbon burial. For past ...
Organic Carbon Burial in Global Continental Margin Sediments
Organic Carbon Burial in Global Continental Margin Sediments
Continental margin sediments are key long-term sinks for atmospheric carbon dioxide (CO₂). Despite their global significance, the magnitude and spatial distribution of or...
Carbon Connections: understanding the carbon interactions between adjacent marine sedimentary environments. 
Carbon Connections: understanding the carbon interactions between adjacent marine sedimentary environments. 
<p>Annually, continental shelf sediments bury an estimated 137 Mt of organic carbon (OC) making these sedimentary systems an integral component of the global carbon (...
Land to Ocean Transfer of Erosion-Related Organic Carbon, Waipaoa Sedimentary System, East Coast, New Zealand
Land to Ocean Transfer of Erosion-Related Organic Carbon, Waipaoa Sedimentary System, East Coast, New Zealand
<p>Mountainous islands of the Pacific Rim (such as New Zealand) purportedly deliver up to 40% of the suspended sediment load and up to 35% of the riverine particulate organic...
Comparing the linkages between carbon components and soil aggregates in vegetable fields to continuous input of different carbon sources
Comparing the linkages between carbon components and soil aggregates in vegetable fields to continuous input of different carbon sources
Aims To address the issue of declining soil organic carbon (SOC) in vegetable fields, this study investigated the effects of continuous input of different carbon sources on soil ca...

Back to Top