(Table 1) Stable isotope record of Middle Cretaceous benthic foraminifera

DOI

Preservation of planktic foraminiferal calcite has received widespread attention in recent years, but the taphonomy of benthic foraminiferal calcite and its influence on the deep-sea palaeotemperature record have gone comparatively unreported. Numerical modeling indicates that the carbonate recrystallization histories of deep-sea sections are dominated by events in their early burial history, meaning that the degree of exchange between sediments and pore fluids during the early postburial phase holds the key to determining the palaeotemperature significance of diagenetic alteration of benthic foraminifera. Postburial sedimentation rate and lithology are likely to be important determinants of the paleoceanographic significance of this sediment–pore fluid interaction. Here we report an investigation of the impact of extreme change in sedimentation rate (a prolonged and widespread Upper Cretaceous hiatus in the North Atlantic Ocean) on the preservation and d18O of benthic foraminifera of Middle Cretaceous age (nannofossil zone NC10, uppermost Albian/lowermost Cenomanian, ~99 Ma ago) from multiple drill sites. At sites where this hiatus immediately overlies NC10, benthic foraminifera appear to display at least moderate preservation of the whole test. However, on closer inspection, these tests are shown to be extremely poorly preserved internally and yield d18O values substantially higher than those from contemporaneous better preserved benthic foraminifera at sites without an immediately overlying hiatus. These high d18O values are interpreted to indicate alteration close to the seafloor in cooler waters during the Late Cretaceous hiatus. Intersite differences in lithology modulate the diagenetic impact of this extreme change in sedimentation rate. Our results highlight the importance of thorough examination of benthic foraminiferal wall structures and lend support to the view that sedimentation rate and lithology are key factors controlling the paleoceanographic significance of diagenetic alteration of biogenic carbonates.

Supplement to: Sexton, Philip F; Wilson, Paul A (2009): Preservation of benthic foraminifera and reliability of deep-sea temperature records: Importance of sedimentation rates, lithology, and the need to examine test wall structure. Paleoceanography, 24(2), PA2208

Identifier
DOI https://doi.org/10.1594/PANGAEA.831965
Related Identifier https://doi.org/10.1029/2008PA001650
Related Identifier https://doi.org/10.1029/2002PA000848
Related Identifier https://doi.org/10.1130/0-8137-2332-9.121
Related Identifier https://doi.org/10.1130/0091-7613(2002)030<0123:DSPROE>2.0.CO
Metadata Access https://ws.pangaea.de/oai/provider?verb=GetRecord&metadataPrefix=datacite4&identifier=oai:pangaea.de:doi:10.1594/PANGAEA.831965
Provenance
Creator Sexton, Philip F ORCID logo; Wilson, Paul A ORCID logo
Publisher PANGAEA
Publication Year 2009
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 487 data points
Discipline Earth System Research
Spatial Coverage (-76.235W, -20.587S, 112.209E, 48.516N); North Atlantic/HILL; South Atlantic/RIDGE; North Atlantic/BASIN; North Atlantic/SEAMOUNT; North Atlantic/PLATEAU; North Atlantic/PLAIN; South Indian Ridge, South Indian Ocean; Blake Nose, North Atlantic Ocean
Temporal Coverage Begin 1970-10-20T00:00:00Z
Temporal Coverage End 1997-02-08T19:30:00Z