HR: 1340h
AN: PP53B-1394 [Abstracts]
TI: Evaluating the Mn/Ca Ratio of Foraminiferal Calcite Determined by Flow-Through ICP-MS as a Proxy for
Terrigenous Input, Upwelling, and Carbon Rain Rate
AU: * Klinkhammer, G P
EM: gklinkhammer@coas.oregonstate.edu
AF: COAS
Oregon State University, Ocean Admin Bldg 104, Corvallis, OR 97331
United States
AU: Mix, A C
AF: COAS
Oregon State University, Ocean Admin Bldg 104, Corvallis, OR 97331
United States
AU: Benway, H M
AF: COAS
Oregon State University, Ocean Admin Bldg 104, Corvallis, OR 97331
United States
AU: Haley, B A
AF: Dept of Earth Sciences
University of Bristol, Wills Memorial Bldg
Queen's Road, Bristol, BS8 1RJ
United Kingdom
AB:
The Mn/Ca ratio of the biogenic calcite preserved in deep-sea sediments has potential as a tracer of terrestrial input,
upwelling, and carbon rain rate over geologic time scales. The basis for this potential lies in features of the Mn cycle in
the oceans, which are well known. Manganese is a biogeochemically reactive element, but has a lower affinity for dissolved
oxygen and organic matter than iron, making it more stable over short time scales, and less affected by speciation. Depth
profiles of Mn in oligotrophic ocean waters show a sharp contrast between low concentrations in deep water (0.20 nM) and
relatively high concentrations in the mixed layer (2-5 nM). Mn oxides are stable in high oxygen environments but reduced in
the suboxic conditions found in the oxygen minimum zone (OMZ). This behavior makes the intermediate water to surface water
concentration ratio of Mn sensitive to the intensity of the OMZ, an artifact of the carbon rain rate, and dust/river input.
In sediments, suboxic dissolution is balanced by the formation of carbonate making Mn highly reactive during early
diagenesis.
These features of the Mn cycle in seawater make the Mn/Ca ratio of foraminifera an attractive paleoproxy, but only if the
primary signature can be recovered after diagenetic alteration. Recently our laboratory developed a flow-through extraction
system that gives us fresh insight into this problem by making it possible to separate mineral phases associated with the
foraminiferal fraction by differences in their solubilities. This paper examines foraminiferal Mn/Ca ratios in core tops and
down core records from the eastern equatorial Pacific determined with this new technique. We access the potential of
flow-through Mn/Ca by comparing its record to those of Mg/Ca and stable isotopes.
UR: http://www.wmkeck-icpms.coas.oregonstate.edu
DE: 4806 Carbon cycling
DE: 4825 Geochemistry
DE: 4875 Trace elements
DE: 4894 Instruments and techniques
DE: 4267 Paleoceanography
SC: Paleoceanography and Paleoclimatology [PP]
MN: 2004 AGU Fall Meeting