Enhanced Organic Carbon Burial in Sediments of Oxygen Minimum Zones Upon Ocean Deoxygenation

Oxygen minimum zones (OMZs) in the ocean are expanding. This expansion is attributed to global warming and may continue over the next 10 to 100 kyrs due to multiple climate CO2-driven factors. The expansion of oxygen-deficient waters has the potential to enhance organic carbon burial in marine sedim...

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Main Authors: Itzel Ruvalcaba Baroni, Virginia Palastanga, Caroline P. Slomp
Format: Article
Language:English
Published: Frontiers Media S.A. 2020-01-01
Series:Frontiers in Marine Science
Subjects:
Online Access:https://www.frontiersin.org/article/10.3389/fmars.2019.00839/full
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spelling doaj-6b890dc434034ca2af6094aa3e3513b02020-11-25T00:44:53ZengFrontiers Media S.A.Frontiers in Marine Science2296-77452020-01-01610.3389/fmars.2019.00839481325Enhanced Organic Carbon Burial in Sediments of Oxygen Minimum Zones Upon Ocean DeoxygenationItzel Ruvalcaba Baroni0Itzel Ruvalcaba Baroni1Virginia Palastanga2Virginia Palastanga3Caroline P. Slomp4Faculty of Geosciences, Utrecht University, Utrecht, NetherlandsDepartment of Oceanography, Swedish Meteorological and Hydrological Institute, Norrköping, SwedenDepartamento de Oceanografía, Servicio de Hidrografía Naval, Ciudad Autónoma de Buenos Aires, Buenos Aires, ArgentinaDepartamento de Ciencias de la Atmósfera y los Océanos, Ciudad Autónoma de Buenos Aires, Buenos Aires, ArgentinaFaculty of Geosciences, Utrecht University, Utrecht, NetherlandsOxygen minimum zones (OMZs) in the ocean are expanding. This expansion is attributed to global warming and may continue over the next 10 to 100 kyrs due to multiple climate CO2-driven factors. The expansion of oxygen-deficient waters has the potential to enhance organic carbon burial in marine sediments, thereby providing a negative feedback on global warming. Here, we study the response of dissolved oxygen in the ocean to increased phosphorus and iron inputs due to CO2-driven enhanced weathering and increased dust emissions, respectively. We use an ocean biogeochemical model coupled to a general ocean circulation model (the Hamburg Oceanic Carbon Cycle model, HAMOCC 2.0) to assess the impact of such regional deoxygenation on organic carbon burial in the modern ocean on time scales of up to 200 kyrs. We find that an increase in input of phosphorus and iron leads to an expansion of the area of the OMZ impinging on continental margin sediments and a significant decline in bottom water oxygen in the open ocean relative to pre-industrial conditions. The associated increase in organic carbon burial could contribute to the drawdown of ~1,600 Gt of carbon, which is equivalent to the total amount of CO2 in the atmosphere predicted for the year 2100 in a business as usual scenario, on time scales of up to 50 kyrs. The corresponding areal extent of sediments overlain by bottom waters with little or no oxygen as estimated by the model is not very different from the minimum area estimated for two major oceanic anoxic events in Earth's past. Such events were associated with major perturbations of the oceanic carbon cycle, including high rates of organic carbon burial. We conclude that organic carbon burial in low oxygen areas in the ocean could contribute to removal of anthropogenic CO2 from the atmosphere on long time scales.https://www.frontiersin.org/article/10.3389/fmars.2019.00839/fulloxygen minimum zonesocean deoxygenationorganic carbon burialnutrient inputbottom water anoxialong-term carbon dioxide removal
collection DOAJ
language English
format Article
sources DOAJ
author Itzel Ruvalcaba Baroni
Itzel Ruvalcaba Baroni
Virginia Palastanga
Virginia Palastanga
Caroline P. Slomp
spellingShingle Itzel Ruvalcaba Baroni
Itzel Ruvalcaba Baroni
Virginia Palastanga
Virginia Palastanga
Caroline P. Slomp
Enhanced Organic Carbon Burial in Sediments of Oxygen Minimum Zones Upon Ocean Deoxygenation
Frontiers in Marine Science
oxygen minimum zones
ocean deoxygenation
organic carbon burial
nutrient input
bottom water anoxia
long-term carbon dioxide removal
author_facet Itzel Ruvalcaba Baroni
Itzel Ruvalcaba Baroni
Virginia Palastanga
Virginia Palastanga
Caroline P. Slomp
author_sort Itzel Ruvalcaba Baroni
title Enhanced Organic Carbon Burial in Sediments of Oxygen Minimum Zones Upon Ocean Deoxygenation
title_short Enhanced Organic Carbon Burial in Sediments of Oxygen Minimum Zones Upon Ocean Deoxygenation
title_full Enhanced Organic Carbon Burial in Sediments of Oxygen Minimum Zones Upon Ocean Deoxygenation
title_fullStr Enhanced Organic Carbon Burial in Sediments of Oxygen Minimum Zones Upon Ocean Deoxygenation
title_full_unstemmed Enhanced Organic Carbon Burial in Sediments of Oxygen Minimum Zones Upon Ocean Deoxygenation
title_sort enhanced organic carbon burial in sediments of oxygen minimum zones upon ocean deoxygenation
publisher Frontiers Media S.A.
series Frontiers in Marine Science
issn 2296-7745
publishDate 2020-01-01
description Oxygen minimum zones (OMZs) in the ocean are expanding. This expansion is attributed to global warming and may continue over the next 10 to 100 kyrs due to multiple climate CO2-driven factors. The expansion of oxygen-deficient waters has the potential to enhance organic carbon burial in marine sediments, thereby providing a negative feedback on global warming. Here, we study the response of dissolved oxygen in the ocean to increased phosphorus and iron inputs due to CO2-driven enhanced weathering and increased dust emissions, respectively. We use an ocean biogeochemical model coupled to a general ocean circulation model (the Hamburg Oceanic Carbon Cycle model, HAMOCC 2.0) to assess the impact of such regional deoxygenation on organic carbon burial in the modern ocean on time scales of up to 200 kyrs. We find that an increase in input of phosphorus and iron leads to an expansion of the area of the OMZ impinging on continental margin sediments and a significant decline in bottom water oxygen in the open ocean relative to pre-industrial conditions. The associated increase in organic carbon burial could contribute to the drawdown of ~1,600 Gt of carbon, which is equivalent to the total amount of CO2 in the atmosphere predicted for the year 2100 in a business as usual scenario, on time scales of up to 50 kyrs. The corresponding areal extent of sediments overlain by bottom waters with little or no oxygen as estimated by the model is not very different from the minimum area estimated for two major oceanic anoxic events in Earth's past. Such events were associated with major perturbations of the oceanic carbon cycle, including high rates of organic carbon burial. We conclude that organic carbon burial in low oxygen areas in the ocean could contribute to removal of anthropogenic CO2 from the atmosphere on long time scales.
topic oxygen minimum zones
ocean deoxygenation
organic carbon burial
nutrient input
bottom water anoxia
long-term carbon dioxide removal
url https://www.frontiersin.org/article/10.3389/fmars.2019.00839/full
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