Seawater carbonate chemistry and mass fluxes and elemental composition of particulate export in KOSMOS mesocosm experiments (2010-2014)

Diatoms account for up to 40% of marine primary production and require silicic acid to grow and build their opal shell. On the physiological and ecological level, diatoms are thought to be resistant to, or even benefit from, ocean acidification. Yet, global-scale responses and implications for biogeochemical cycles in the future ocean remain largely unknown. Here we conducted five in situ mesocosm experiments with natural plankton communities in different biomes and find that ocean acidification increases the elemental ratio of silicon (Si) to nitrogen (N) of sinking biogenic matter by 17 ± 6 per cent under pCO2 conditions projected for the year 2100. This shift in Si:N seems to be caused by slower chemical dissolution of silica at decreasing seawater pH. We test this finding with global sediment trap data, which confirm a widespread influence of pH on Si:N in the oceanic water column. Earth system model simulations show that a future pH-driven decrease in silica dissolution of sinking material reduces the availability of silicic acid in the surface ocean, triggering a global decline of diatoms by 13–26 per cent due to ocean acidification by the year 2200. This outcome contrasts sharply with the conclusions of previous experimental studies, thereby illustrating how our current understanding of biological impacts of ocean change can be considerably altered at the global scale through unexpected feedback mechanisms in the Earth system.

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Cite this as

Taucher, Jan, Bach, Lennart Thomas, Prowe, A E Friederike, Boxhammer, Tim, Kvale, Karin F, Riebesell, Ulf (2022). Dataset: Seawater carbonate chemistry and mass fluxes and elemental composition of particulate export in KOSMOS mesocosm experiments (2010-2014). https://doi.org/10.1594/PANGAEA.946304

DOI retrieved: 2022

Additional Info

Field Value
Imported on December 1, 2024
Last update December 1, 2024
License CC-BY-4.0
Source https://doi.org/10.1594/PANGAEA.946304
Author Taucher, Jan
Given Name Jan
Family Name Taucher
More Authors
Bach, Lennart Thomas
Prowe, A E Friederike
Boxhammer, Tim
Kvale, Karin F
Riebesell, Ulf
Source Creation 2022
Publication Year 2022
Resource Type text/tab-separated-values - filename: Taucher-etal_2022_Nature
Subject Areas
Name: Chemistry

Related Identifiers
Title: Enhanced silica export in a future ocean triggers global diatom decline
Identifier: https://doi.org/10.1038/s41586-022-04687-0
Type: DOI
Relation: References
Year: 2022
Source: Nature
Authors: Taucher Jan , Bach Lennart Thomas , Prowe A E Friederike , Boxhammer Tim , Kvale Karin F , Riebesell Ulf , Taucher Jan , Boxhammer Tim , Gattuso Jean-Pierre , Epitalon Jean-Marie , Lavigne Héloïse , Orr James .

Title: Mass fluxes and elemental composition of particulate export in KOSMOS mesocosm experiments on ocean acidification (2010-2014)
Identifier: https://doi.org/10.1594/PANGAEA.940756
Type: DOI
Relation: References
Year: 2022
Authors: Taucher Jan , Bach Lennart Thomas , Prowe A E Friederike , Boxhammer Tim , Kvale Karin F , Riebesell Ulf , Taucher Jan , Boxhammer Tim , Gattuso Jean-Pierre , Epitalon Jean-Marie , Lavigne Héloïse , Orr James .

Title: seacarb: seawater carbonate chemistry with R. R package version 3.2.16
Identifier: https://cran.r-project.org/web/packages/seacarb/index.html
Type: DOI
Relation: References
Year: 2021
Authors: Taucher Jan , Bach Lennart Thomas , Prowe A E Friederike , Boxhammer Tim , Kvale Karin F , Riebesell Ulf , Taucher Jan , Boxhammer Tim , Gattuso Jean-Pierre , Epitalon Jean-Marie , Lavigne Héloïse , Orr James .