3.9 Article

Descent toward the Icehouse: Eocene sea surface cooling inferred from GDGT distributions

Journal

PALEOCEANOGRAPHY
Volume 30, Issue 7, Pages 1000-1020

Publisher

AMER GEOPHYSICAL UNION
DOI: 10.1002/2014PA002723

Keywords

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Funding

  1. Royal Society Wolfson Research Merit Award
  2. Palaeontological Assosciation
  3. NERC Descent into the Icehouse grant [NE/I005714/1]
  4. NERC CPE grant [NE/K014757/1]
  5. GNS Science Global Change through Time Programme
  6. UK NERC
  7. NERC [NE/I005595/1, NE/I005870/1, NE/K014757/1, NE/I005714/1] Funding Source: UKRI
  8. Natural Environment Research Council [NE/I005870/1, NE/K014757/1, NE/I005595/1, NE/I005714/1] Funding Source: researchfish

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The TEX86 proxy, based on the distribution of marine isoprenoidal glycerol dialkyl glycerol tetraether lipids (GDGTs), is increasingly used to reconstruct sea surface temperature (SST) during the Eocene epoch (56.0-33.9 Ma). Here we compile published TEX86 records, critically reevaluate them in light of new understandings in TEX86 palaeothermometry, and supplement them with new data in order to evaluate long-term temperature trends in the Eocene. We investigate the effect of archaea other than marine Thaumarchaeota upon TEX86 values using the branched-to-isoprenoid tetraether index (BIT), the abundance of GDGT-0 relative to crenarchaeol (%GDGT-0), and the Methane Index (MI). We also introduce a new ratio, % GDGTRS, which may help identify Red Sea-type GDGT distributions in the geological record. Using the offset between TEX86H and TEX86L (Delta H-L) and the ratio between GDGT-2 and GDGT-3 ([2]/[3]), we evaluate different TEX86 calibrations and present the first integrated SST compilation for the Eocene (55 to 34 Ma). Although the available data are still sparse some geographic trends can now be resolved. In the high latitudes (>55 degrees), there was substantial cooling during the Eocene (similar to 6 degrees C). Our compiled record also indicates tropical cooling of similar to 2.5 degrees C during the same interval. Using an ensemble of climate model simulations that span the Eocene, our results indicate that only a small percentage (similar to 10%) of the reconstructed temperature change can be ascribed to ocean gateway reorganization or paleogeographic change. Collectively, this indicates that atmospheric carbon dioxide (pCO(2)) was the likely driver of surface water cooling during the descent toward the icehouse.

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