Responses of microbial metabolic rates to non-equilibrated silicate vs calcium-based ocean alkalinity enhancement.

Marin-Samper, Laura, Arístegui, Javier, Hernández-Hernández, Nauzet and Riebesell, Ulf (Submitted) Responses of microbial metabolic rates to non-equilibrated silicate vs calcium-based ocean alkalinity enhancement. Open Access EGUsphere . DOI 10.5194/egusphere-2024-1776.

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Supplementary data:

Abstract

This study contributes to the inaugural exploration of non-equilibrated Ocean Alkalinity Enhancement (OAE). The manipulation of Total Alkalinity (TA), involving silicate and calcium-based ∆TA gradients ranging from 0 to 600 µmol · L-1, was conducted without prior CO2 sequestration, under natural conditions and at a mesocosm scale (~60 m3). The resulting impact included an increase in pH and a decrease in pCO2, sustained across the experiment, as full natural equilibration via sea-gas exchange did not occur. Implemented in a neritic system under post-bloom conditions, a midway mixing event was simulated. Following an inorganic nutrient addition, discernible delays in bloom formation, as indicated by the Gross Production (GP) and Net Community Production (NCP) rates, as well as by the chlorophyll-a (Chla) concentrations, in relation to the ∆TA gradient, were observed. Notably, the delay was more pronounced for the calcium treatment set compared to the silicate one, where low TA treatments exhibited earlier responses than high TA ones. This delay is likely attributed to the previously documented, species-specific negative relationships between high pH/lowCO2 levels and phytoplankton growth rates. This study underscores the need for further investigation into the implications of this response pattern in terms of trophic transfer and seasonal suitability. Further, it is anticipated that a wider delay in bloom formation would be evident with a larger non equilibrated TA gradient. Thus, highlighting the importance of exploring variations in TA limits for a comprehensive understanding of the OAE’s impacts.

Document Type: Article
Funder compliance: info:eu-repo/grantAgreement/EC/H2020/869357 ; info:eu-repo/grantAgreement/EC/H2020/731065
Keywords: OAE, alkalinization, silicate-based, calcium-based, community production, metabolic rates
Research affiliation: OceanRep > GEOMAR > FB2 Marine Biogeochemistry > FB2-BI Biological Oceanography
Main POF Topic: PT6: Marine Life
Refereed: No
Open Access Journal?: Yes
Publisher: Copernicus Publications (EGU)
Projects: OceanNETs, AQUACOSM
Date Deposited: 27 Jun 2024 13:08
Last Modified: 27 Jun 2024 13:08
URI: https://oceanrep.geomar.de/id/eprint/60498

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