HR: 14:15h
AN: PP52B-03 [PDF]
TI: Reconciling elemental Ba and barite as proxies of export production: Multiple Ba reservoirs in
biogenic sediment
AU: * Murray, R W
EM: rickm@bu.edu
AF: Dept of Earth Sciences, Boston University, Boston, MA 02215 United States
AU: Kryc, K A
EM: kkryc@pangea.stanford.edu
AF: Dept of Earth Sciences, Boston University, Boston, MA 02215 United States
AU: Murray, D W
EM: dmurray@brown.edu
AF: Center for Environmental Studies, Brown University, Providence, RI 02912 United States
AB:
The use of barite has long been recognized as a promising proxy for export production due to the relationship between its
formation and settling biogenic matter. Accordingly, excess Ba (total Ba minus Ba associated with terrigenous material)
calculations have been applied as a proxy of barite to assess export production, although this approach may be problematic.
For example, because there are additional carrying phases of Ba in sediment other than terrigenous Ba and barite (e.g.,
oxides, organic matter), excess Ba may not be related in a predictable manner to export production. Indeed, previous workers
have also identified the importance of non-barite reservoirs of Ba in sediment traps (e.g., Dymond et al., 1992; Francois et
al., 1995) and sediment (e.g., Schroeder et al., 1997; Eagle et al., 2003). Despite these multiple reservoirs, the use of
elemental Ba in biogenic sediment as a proxy of export production has a proven and resilient track record.
To further understand the partitioning of Ba in biogenic sediment, we sequentially extracted seven, operationally-defined
fractions (loosely-bound, exchangeable, carbonate, oxide, organic, opal, and residual) of sediment from surface and downcore
samples from a cross-equatorial meridional transect in the equatorial Pacific. We find that Ba is evenly distributed between
the sedimentary components with approximately 25-40 percent of the total extracted Ba in each of the exchangeable, carbonate,
and oxide fractions for both surface and downcore sediment samples. In the surface sediment transect across the equator,
there is no Ba in the residual fraction, and between 10 and 50 percent of the total extracted Ba is in the organic fraction.
Also, downcore samples that were extracted from sediments with low relative bulk Ba/Ti tend to have Ba in both the residual
and organic fractions as opposed to samples with high relative bulk Ba/Ti where there is a lack of Ba in both the residual
and organic fractions. These observations indicate that alternate carriers of Ba, including the exchangeable, carbonate, and
oxide fractions of sediment, may exert a larger influence on total Ba than previously suspected.
Our new results, when interpreted in the context of recent experimental (Ganeshram et al., 2003) and observational (Eagle et
al., 2003) studies of barite formation and the relationship between barite and Ba, further explain why elemental Ba is a
valid proxy of export production, as is the distribution of barite (e.g., Paytan et al., 1996). Our results show that while
there is a reorganization of elemental Ba between sedimentary phases (which can be considered a continuation of the water
column processes described by Ganeshram et al., 2003), the reorganization only affects the distribution of the Ba and does
not destroy the primary relationship between export flux and the accumulation of Ba preserved in the sedimentary record.
DE: 1050 Marine geochemistry (4835, 4850)
DE: 1615 Biogeochemical processes (4805)
DE: 4231 Equatorial oceanography
DE: 4267 Paleoceanography
DE: 4805 Biogeochemical cycles (1615)
SC: Paleoceanography and Paleoclimatology [PP]
MN: 2003 Fall Meeting