Geophysical Research Letters · 2020 · 41 citations · 74 references
EngineeringMajor CarbonMarine ChemistryOceanographyDark Ocean EcosystemsEarth ScienceMarine EnvironmentOrganic GeochemistryParticle FluxesOrganic CarbonMicrobial EcologyBiological OceanographyEnvironmental MicrobiologyCarbon CycleBlue CarbonOceanic SystemsBiogeochemistryCarbon SequestrationMarine GeologyChemical OceanographyCarbon SinkParticulate Organic MatterMargins ServeMarine Biology
Abstract Deep ocean microorganisms consume particulate organic matter that is produced in the surface ocean and exported to deeper depths. Such consumption not only enriches inorganic carbon in the deep ocean but also transforms organic carbon into recalcitrant forms, creating an alternative type of carbon sequestration. However, estimates of deep microbial carbon demand substantially exceed the available particulate organic carbon exported from the euphotic zone, resulting in an unbalanced dark ocean carbon budget. Here, we combined field‐based microbial activity parameters, integrated multiyear particle export flux data, sinking particle fluxes measured by sediment traps, and optical data from Biogeochemical‐Argo floats to quantify the main sources of organic carbon to the dark ocean. Laterally transported particles (including sinking and suspended particles) serve as a major energy source, which directly provide organic carbon and enhance new organic carbon production by dark carbon fixation, reconciling the mismatch in the regional carbon budget.
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Archaeal nitrification in the ocean
Cornelia Wuchter, Ben Abbas, Marco J. L. Coolen et al. · Proceedings of the National Academy of Sciences · 2006 · 1.1K citations · Full text