Climate-driven changes in sedimentation rate influence phosphorus burial along continental margins of the northwestern Mediterranean

[EN]The burial of phosphorus (P) in continental margin sediments is a critical component of the marine reactive P budget, and thus an important factor in marine biological productivity. We determined downcore records of P from a site drilled on the upper slope of the Gulf of Lions (PRGL 1), northwes...

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Detalhes bibliográficos
Autores: Cortina Guerra, Aleix, Filippelli, Gabriel, Ochoa Lozano, Diana Paola, Sierro Sánchez, Francisco Javier, Flores Villarejo, José Abel, Grimalt, Joan O.
Tipo de documento: artigo
Estado:Versão publicada
Data de publicação:2018
País:España
Recursos:Universidad de Salamanca (USAL)
Repositório:GREDOS. Repositorio Institucional de la Universidad de Salamanca
OAI Identifier:oai:gredos.usal.es:10366/146677
Acesso em linha:http://hdl.handle.net/10366/146677
Access Level:Acceso aberto
Palavra-chave:Gulf of lions
MIS 8
Paleoredox
Phosphorus paleoproductivity
Termination IV
2506 Geología
Descrição
Resumo:[EN]The burial of phosphorus (P) in continental margin sediments is a critical component of the marine reactive P budget, and thus an important factor in marine biological productivity. We determined downcore records of P from a site drilled on the upper slope of the Gulf of Lions (PRGL 1), northwestern Mediterranean Sea. Changes in total P content were monitored from Marine Isotope Stage (MIS) 6 to MIS 11. In addition, in two selected intervals (248–277 ka and 306–342 ka) the total P record was expanded by adding detailed geochemical analyses of the various P fractions, including oxyhydroxide-associated P, authigenic P, detrital P and organic P. Increased sedimentation rates during glacials owing to seaward migration of the Rhone's mouth, enhanced the burial of reactive P (oxyhydroxide-associated + authigenic + organic) phases by decreasing its time at the reactive sediment/water interface, in turn resulting in increasing proportion of authigenic to detrital phosphorus. The inverse was found for interglacial stages.