Salinity estimation from Gulf of Guinea, sediment core MD03-2707

DOI

The isotopic composition of surface seawater is widely used to infer past changes in sea surface salinity using paired foraminiferal Mg/Ca and d18O from marine sediments. At low latitudes, paleosalinity reconstructions using this method have largely been used to document changes in the hydrological cycle. This method usually assumes that the modern seawater d18O (d18Osw)/salinity relationship remained constant through time. Modelling studies have shown that such assumptions may not be valid because large-scale atmospheric circulation patterns linked to global climate changes can alter the seawater d18Osw/salinity relationship locally. Such processes have not been evidenced by paleo-data so far because there is presently no way to reconstruct past changes in the seawater d18Osw/salinity relationship. We have addressed this issue by applying a multi-proxy salinity reconstruction from a marine sediment core collected in the Gulf of Guinea. We measured hydrogen isotopes in C37:2 alkenones (dDa) to estimate changes in seawater dD. We find a smooth, long-term increase of ~10 per mil in dDa between 10 and 3 kyr BP, followed by a rapid decrease of ~10 per mil in dDa between 3 kyr BP and core top to values slightly lighter than during the early Holocene. Those features are inconsistent with published salinity estimations based on d18Osw and foraminiferal Ba/Ca, as well as nearby continental rainfall history derived from pollen analysis. We combined dDa and d18Osw values to reconstruct a Holocene record of salinity and compared it to a Ba/Ca-derived salinity record from the same sedimentary sequence. This combined method provides salinity trends that are in better agreement with both the Ba/Ca-derived salinity and the regional precipitation changes as inferred from pollen records. Our results illustrate that changes in atmospheric circulation can trigger changes in precipitation isotopes in a counter-intuitive manner that ultimately impacts surface salinity estimates based on seawater isotopic values. Our data suggest that the trends in Holocene rainfall isotopic values at low latitudes may not uniquely result from changes in local precipitation associated with the amount effect.

The dataset includes deuterium measurements performed on C37:2 alkenones. These measurements, jointly with seawater d18O estimates previously published in Weldeab et al.(2007), are jointly used to derive sea surface salinity using the isotopologues method as described in Rohling (2007).

Supplement to: Leduc, Guillaume; Sachs, Julian P; Kawka, Orest E; Schneider, Ralph R (2013): Holocene changes in eastern equatorial Atlantic salinity as estimated by water isotopologues. Earth and Planetary Science Letters, 362, 151-162

Identifier
DOI https://doi.org/10.1594/PANGAEA.849518
Related Identifier https://doi.org/10.1016/j.epsl.2012.12.003
Related Identifier https://doi.org/10.1126/science.1140461
Metadata Access https://ws.pangaea.de/oai/provider?verb=GetRecord&metadataPrefix=datacite4&identifier=oai:pangaea.de:doi:10.1594/PANGAEA.849518
Provenance
Creator Leduc, Guillaume; Sachs, Julian P; Kawka, Orest E; Schneider, Ralph R ORCID logo
Publisher PANGAEA
Publication Year 2015
Rights Creative Commons Attribution 3.0 Unported; https://creativecommons.org/licenses/by/3.0/
OpenAccess true
Representation
Resource Type Supplementary Dataset; Dataset
Format text/tab-separated-values
Size 112 data points
Discipline Earth System Research
Spatial Coverage (9.395 LON, 2.502 LAT)