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32Si Dating of Marine Sediments from Bangladesh

Published online by Cambridge University Press:  18 July 2016

U Morgenstern*
Affiliation:
Institute of Geological & Nuclear Sciences (GNS), PO Box 30-368, Lower Hutt, New Zealand
M A Geyh
Affiliation:
Institute for Joint Geoscientific Research (GGA); Stilleweg 2; 30655 Hannover, Germany
H R Kudrass
Affiliation:
Federal Institute for Geosciences and Natural Resources (BGR), Germany
R G Ditchburn
Affiliation:
Institute of Geological & Nuclear Sciences (GNS), PO Box 30-368, Lower Hutt, New Zealand
I J Graham
Affiliation:
Institute of Geological & Nuclear Sciences (GNS), PO Box 30-368, Lower Hutt, New Zealand
*
Corresponding author. Email: [email protected].
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Abstract

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Appropriate dating tools are essential for paleoenvironmental studies. Cosmogenic 32Si with a half-life of about 140 years is ideally suited to cover the dating range 30–1000 years. Here we have applied scintillation spectrometry for detection of natural 32Si to date marine shelf sediments. High detection efficiency, combined with stable background, allows for the detection of extremely low 32Si specific activities found in such sediments with counting rates below one count per hour. For a sediment core from the Ganges-Brahmaputra delta 32Si dating yields mean sedimentation rates of 0.7 ± 0.2 cm/yr for 50 to several hundred years BP and 3.1 ± 0.8 cm/yr for the past 50 years. The four-fold increase of the sedimentation rate over the past 50 years may reflect increased sediment loads in the rivers due to increasing human colonization within the rivers' drainage basins.

Type
II. Our ‘Wet’ Environment
Copyright
Copyright © 2001 by the Arizona Board of Regents on behalf of the University of Arizona 

References

Clausen, HB. 1973. Dating of polar ice by 32Si. Journal of Glaciology 66:411–16.Google Scholar
Craig, H, Somayajulu, BLK, Turekian, KK. 2000. Paradox lost: silicon 32 and the global ocean silica cycle. Earth and Planetary Science Letters 175:297308.Google Scholar
Dansgaard, W, Clausen, HB, Aarkrog, A. 1966. The 32Si fallout in Scandinavia-a new method of glacier ice dating. Tellus XVIII: 187–91.Google Scholar
DeMaster, DJ. 1980. The half-life of 32Si determined from a varved Gulf of California sediment core. Earth and Planetary Science Letters 48:209–17.Google Scholar
DeMaster, DJ, Cochran, JK. 1982. Particle mixing rates in deep-sea sediments determined from excess 210Pb and 32Si profiles. Earth and Planetary Science Letters 61:257–71.Google Scholar
Fröhlich, K, Franke, T, Gellermann, R, Hebert, D, Jordan, H. 1987. 32Si in different aquifer types and implications for groundwater dating. In: Isotope techniques in water resources development. IAEA-SM-299/72 :149–63.Google Scholar
Kharkar, DP, Turekian, KK, Scott, R. 1969. Comparison of the sedimentation rates obtained by 32Si and uranium decay series determinations in some siliceous Antarctic cores. Earth and Planetary Science Letters 6:61–8.CrossRefGoogle Scholar
Krishnaswami, S, Lal, D, Martin, JM, Meybeck, M. 1971. Geochronology of lake sediments. Earth and Planetary Science Letters 11:407–14.Google Scholar
Lal, D, Schink, DR. 1960. Low background thin-wall flow counters for measuring beta activity of solids. Rev. Sci. Instrum. 31:395.Google Scholar
Lal, D, Goldberg, ED, Koide, M. 1960. Cosmic-ray-produced 32Si in nature. Science 131:332–7.Google Scholar
Lal, D, Nijampurkar, VN, Rama, S. 1970 32Si hydrology. In: hot. hydrol.IAEA-SM-129/54 :847–68.Google Scholar
Lal, D, Nijampurkar, VN, Somayajulu, BLK. 1976. 32Si specific activities in coastal waters of the world oceans. Limnology and Oceanography 21(2):285–93Google Scholar
Lal, D, Nijampurkar, VN, Rajagopalan, G, Somayajulu, BLK. 1979. Annual fallout of 32Si, 210Pb, 35S and 7Be in rains in India. Proceedings of the Indian Academy of Science Volume 88 A, Part II, No. 1. p2940.Google Scholar
Martin, JM, Meybeck, M, Nijampurkar, VN, Somayajulu, BLK. 1992 210Pb, 226Ra and 32Si in Pavin lake (Massif Central, France). Chemical Geology 94:173–81.CrossRefGoogle Scholar
Michels, KH, Kudrass, HR, Hübscher, C, Suckow, A, Wiedicke, M. 1998. The submarine delta of the Ganges-Brahmaputra: cyclone-dominated sedimentation patterns. Marine Geology 149:133154.Google Scholar
Michels, K, Suckow, A, Breitzke, M, Kudrass, HR, Kottke, B. 2000. The role of a shelf canyon as a temporary depocenter between river mouth and deep sea fan. Deep-Sea Research. Forthcoming.Google Scholar
Morgenstern, U, Gellermann, R, Hebert, D, Börner, I, Stolz, W, Vaikmae, R, Rajamae, R, Putnik, H. 1995. 32Si in limestone aquifers. Chemical Geology 120:127–34.Google Scholar
Morgenstern, U, Taylor, CB, Parrat, Y, Gäggeler, HW, Eichler, B. 1996. 32Si in precipitation: evaluation of temporal and spatial variation and as dating tool for glacial ice. Earth and Planetary Science Letters 144:289–96.Google Scholar
Morgenstern, U, Fifield, LK, Zondervan, A. 2000. New frontiers in glacier ice dating: measurement of natural 32Si by AMS. Nucl. Instr. and Methods B172:605–9.Google Scholar
Nijampurkar, VN, Amin, BS, Kharkar, DP, Lal, D. 1966. Dating of groundwaters of ages younger than 1000–1500 years using silicon-32. Nature 210:478.Google Scholar
Nijampurkar, VN, Rao, DK. 1992. Accumulation and flow rates of ice on Chhota Shigri glacier, central Himalaya, using radioactive and stable isotopes. Journal of Glaciology 38(128):4350.CrossRefGoogle Scholar
Nijampurkar, VN, Rao, DK, Oldfield, F, Renberg, I. 1998. The half-life of 32Si: a new estimate based on varved lake sediments. Earth and Planetary Science Letters 163:191–6.Google Scholar
Somayajulu, BLK, Rengarajan, R, Lal, D, Craig, H. 1991. GEOSECS Pacific and Indian Ocean 32Si profiles. Earth and Planetary Science Letters 107:197216.Google Scholar
Suckow, A, Morgenstern, U, Kudrass, HR. 2001. Absolute dating of recent sediments in the cyclone influenced shelf area of Bangladesh: comparison of gammaspectrometric (137Cs, 210Pb, 228Ra), Radiocarbon and 32Si ages. Radiocarbon. This issue.Google Scholar
Treguer, P, Nelson, DM, Van Bennekom, AJ, DeMaster, DJ, Leynaert, A, Queguinier, B. 1995. The silica ballance in the world ocean: a reestimate. Science 268:375–9.CrossRefGoogle Scholar