OceanRep
Serpentine alteration as source of high dissolved silicon and elevated δ30Si values to the marine Si cycle.
Geilert, Sonja , Grasse, Patricia , Wallmann, Klaus , Liebetrau, Volker and Menzies, Catriona D. (2020) Serpentine alteration as source of high dissolved silicon and elevated δ30Si values to the marine Si cycle. Nature Communications, 11 (Art.Nr. 5123). DOI 10.1038/s41467-020-18804-y.
Preview |
Text
s41467-020-18804-y.pdf - Published Version Available under License Creative Commons: Attribution 4.0. Download (1MB) | Preview |
Preview |
Text
41467_2020_18804_MOESM1_ESM.pdf - Supplemental Material Available under License Creative Commons: Attribution 4.0. Download (942kB) | Preview |
Preview |
Text (Pressemitteilung GEOMAR)
pm_2020_53_Silicium_NatComm.pdf Download (250kB) | Preview |
Preview |
Text (Press release GEOMAR)
pm_2020_53_Silicon_NatComm_en.pdf Download (269kB) | Preview |
Abstract
Serpentine alteration is recognized as an important process for element cycling, however, related silicon fluxes are unknown. Pore fluids from serpentinite seamounts sampled in the Mariana forearc region during IODP Expedition 366 were investigated for their Si, B, and Sr isotope signatures (δ 30 Si, δ 11 B, and 87 Sr/ 86 Sr, respectively) to study serpentinization in the mantle wedge and shallow serpentine alteration to authigenic clays by seawater. While serpentinization in the mantle wedge caused no significant Si isotope fractionation, implying closed system conditions, serpentine alteration by seawater led to the formation of authigenic phyllosilicates, causing the highest natural fluid δ 30 Si values measured to date (up to +5.2 ± 0.2‰). Here we show that seafloor alteration of serpentinites is a source of Si to the ocean with extremely high fluid δ 30 Si values, which can explain anomalies in the marine Si budget like in the Cascadia Basin and which has to be considered in future investigations of the global marine Si cycle.
Document Type: | Article |
---|---|
Keywords: | Mariana forearc region, serpentine alteration, Si isotopes, B isotopes, authigenic clay formation, marine Si cycle, IODP Expedition 366 |
Research affiliation: | OceanRep > GEOMAR > FB2 Marine Biogeochemistry > FB2-MG Marine Geosystems OceanRep > GEOMAR > FB1 Ocean Circulation and Climate Dynamics > FB1-P-OZ Paleo-Oceanography |
Refereed: | Yes |
Open Access Journal?: | Yes |
Publisher: | Nature Research |
Projects: | IODP |
Date Deposited: | 21 Oct 2020 09:52 |
Last Modified: | 08 Feb 2023 09:38 |
URI: | https://oceanrep.geomar.de/id/eprint/50751 |
Actions (login required)
View Item |
Copyright 2023 | GEOMAR Helmholtz-Zentrum für Ozeanforschung Kiel | All rights reserved
Questions, comments and suggestions regarding the GEOMAR repository are welcomed
at bibliotheksleitung@geomar.de !