HR: 0800h
AN: PP51C-0623 [Abstracts]
TI: Increased Oxygenation of the Oceans Since the Mid-Cenozoic as Constrained by Cr/Co and Os/Ir Ratios in
Oxic Pelagic Sediments
AU: * Hu, M
EM: minhu@rice.edu
AF: Rice University, Department of Earth Science
Rice University
6100 Main, Houston, TX 77005
AU: Lee, C
EM: ctlee@rice.edu
AF: Rice University, Department of Earth Science
Rice University
6100 Main, Houston, TX 77005
AB:
In terms of redox, the marine sediments can be roughly divided into anoxic to suboxic sediments on the margins and oxic
sediments in pelagic (open ocean) environments. The relative amounts of anoxic/suboxic sediments being deposited at any given
time could be related to biological productivity and/or the efficiency of the ocean circulation system. How the
depositional area of anoxic/suboxic deposition has changed through time is thus of concern. One way to track redox conditions
is to investigate variations in the concentrations of redox sensitive trace metals. Most studies along these lines have
focused on anoxic sediments. However, one problem with using anoxic sediments to study the global oceans is that such
sediments are typically deposited in somewhat isolated basins, whose redox conditions may vary from basin to basin.
An alternative approach, taken here, is to examine redox-sensitive elemental ratios in oxic pelagic sediments. This is
motivated by the fact that pelagic sediments are more likely to reflect average ocean chemistry. In addition, the
redox-sensitive metal contents of oxic sediments represent the complement to anoxic sediments. Choosing an appropriate
redox-sensitive elemental ratio which eliminates dilution/concentration effects, requires the identification of trace metals
that are preferentially precipitated in oxic conditions and those precipitated in more reducing conditions. Overall
elemental behaviors were estimated by comparing hydrogenous or authigenic burial fluxes of various trace metals at given
pelagic ODP sites to global riverine input fluxes. If the pelagic burial fluxes of a given element are significantly smaller
than the riverine input flux, other burial outputs are implied, and it is hypothesized here that this element may precipitate
in reducing conditions, such as in oceanic margin. If, on the other hand, the pelagic burial flux is equal to or greater
than the riverine input flux, the implication is that oxic pelagic sediments must account for a significant proportion of the
burial output of that element. In this case, we assume that this element is oxic-loving. Results of this work reveal that
V, Cr, and Co may be particularly redox-sensitive: V and Cr precipitate in reducing environments while Co precipitates in
more oxidizing environments.
Results of our study, combined with existing data from the literature, show that Cr/Co ratios decrease with depth in DSDP596,
39, 801A, 319, 321, 465A, 577 in the N and S Pacific. After correcting for sedimentation rate, it is shown that the
variation of Cr/Co versus time in all of these cores converge, which suggests that the variations in Cr/Co reflect a true
variation in seawater composition. This also supported by the lack of sedimentation constrained by Cr/Co and Ce flux. Cr/Co
remains low during the Cretaceous but begins to rise at ~25Ma across the entire Pacific. If the Cr/Co and Os/Ir ratio of
inputs to the ocean have not changed much, this trend also matches that Os/Ir in the DSDP 596 site in the south Pacific. One
interpretation of these results is that there has been a decrease in the area of anoxic/suboxic sedimentation beginning at
this time. If correct, the implication is that there was a fundamental change in the redox conditions of the ocean in the
mid-Cenozoic. We speculate that this might have been related to mid-Cenozoic global cooling, which may have increased the
efficiency of the oceanic circulation system.
DE: 4924 Geochemical tracers
SC: Paleoceanography and Paleoclimatology [PP]
MN: Fall Meeting 2005