Published March 11, 2026 | Version v1

Marine particles and their remineralization buffer future ocean biogeochemistry response to climate warming

  • 1. Max Planck Institute for Meteorology, Hamburg, Germany
  • 2. EDMO icon University of Bergen, Geophysical Institute
  • 3. EDMO icon Bjerknes Centre for Climate Research
  • 4. ROR icon Max Planck Institute for Meteorology
  • 5. Max Planck Institute for Marine Microbiology
  • 6. ROR icon Leibniz Institute for Baltic Sea Research Warnemünde
  • 7. ROR icon Universität Hamburg

Description

This zenodo record is in addition to the already published manuscript in Biogeosciences by

Maerz et al. 2026: Marine particles and their remineralization buffer future ocean biogeochemistry response to climate warming.

https://doi.org/10.5194/bg-23-1897-2026

Abstract:

 Transport and fate of particulate organic carbon (POC) and nutrients through marine particles co-determine the future response of ocean biogeochemistry and oceanic
carbon uptake under climate warming. This makes the parametrization of the biological carbon pump in Earth system models (ESMs) an important model component and
motivates us to compare the recently developed, particle composition-dependent sinking scheme (M4AGO; Maerz et al., 2020) to the current CMIP6 default Martin curve-like sinking scheme in MPI-ESM1.2-LR (see Mauritsen et al., 2019) under the future shared socio-economic pathway high-emission scenario SSP5-8.5. In their global response, the two model versions are similar, showing a decrease of integrated net primary production between the historical (1985–2014) and future (2070–2099) period of about 8.1 % and 9.7 % for the CMIP6 and M4 AGO version, respectively. However, the models response differs latitudinally. In M4AGO, the temperature-dependent remineralization offsets the future increase in sinking velocity caused by a higher CaCO3 to POC ratio in the low latitudes. There, M4 AGO thus buffers the
export loss of nutrients to the mesopelagic, visible in little future changes of the export to net primary production ratio (the peg ratio), while the CMIP6 version shows more pronounced changes with regionally declining or increasing peg ratio. In the Arctic Ocean, the projected future increase of net primary production in the CMIP6 version is diminished with M4 AGO through its higher POC transfer efficiency in high latitude regions. Hence, the more mechanistic and to environmental changes-responding M4 AGO scheme shows a stronger buffering regional response to climate warming than the CMIP6 model version. The higher transfer efficiency
leads to enhanced CO2 uptake in high latitude regions while the tropical regions turn later into a net sink with M4AGO compared to the standard CMIP6 version. Next to ballasting, we identified the particle microstructure as vigorous determinant for future changes of POC sinking velocity. Microstructure co-determines particle porosity and particle density. Processes governing the microstructure thus can be regarded as decisive to understand for reducing uncertainty of future POC fluxes.

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Additional details

Related works

Is published in
Publication: 10.5194/bg-23-1897-2026 (DOI)

Funding

Deutsche Forschungsgemeinschaft
CLICCS – Climate, Climatic Change, and Society 390683824
European Commission
ESM2025 - Earth system models for the future 101003536
European Commission
BioGeoSea - Enhancing Biogeochemical Essential Ocean Variables for European and Global Assessments 101216427
Novo Nordisk Foundation
Shallow Water Processes and Transitions to the Baltic Scale 0079370

Dates

Submitted
2025-10-06
Accepted
2026-02-19
Available
2026-03-11