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海洋沉积物中生物成因Ba的海洋生产力研究

, PP. 307-315

Keywords: 海洋沉积物,生物成因Ba,海洋生产力

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Abstract:

一直以来,对海洋古生产力的研究是古海洋学研究领域中一个非常重要的分支,因而寻求反演海洋古生产力替代性指标成为了海洋工作者的首要任务。沉积物中有机碳、钙质生物、硅质生物及其碳、氧同位素组成等经典的海洋生产力指标早已确立,但这些与浮游生物直接相关的替代指标因其在海底沉积物中低的保存率,限制了它们在广阔海域中的应用。一些与生物成因相关的地球化学指标(Ba,P,Al,U等),其在海洋中独特的生物地球化学性质使得它们成为定性、定量指示海洋古生产力强有力的手段,尤其是生物成因Ba,在富氧沉积环境中可达30%左右的保存率,是重建海洋生产力最有前景的替代指标。利用单一的生物成因Ba,或结合其他指标,在国外已经成为研究海洋古生产力的重要方法。文章在阐述Ba作为古海洋生产力指标的发展、计算以及影响因素等问题的基础上,进一步描述了其应用现状以及南海生物成因Ba的初步研究状况。南海沉积物ODP1148站岩芯中生物成因Ba的初步研究表明,Ba与Ca含量具有较好的相关性,在我国南海北部中中新世以来以Ba作为古生产力替代指标具有较大的潜力,但在方法的利用上还需进一步研究。如果要获得更加准确的古海洋环境信息,综合分析多个替代性指标会更加可靠。

References

[1]  1 Barnola J M, Raynaud D,Korotkevich Y S et al.Vostok ice core provides 160,000-year record of atmospheric CO2. Nature,1987, 329 :408~414
[2]  2 Raynaud D, Barnola J M,Chappellaz J et al.Glacial interglacial evolution of greenhouse gases as inferred from ice core analysis: A review of recent results. Quaternary Science Reviews,1992, 11 (4):381~386
[3]  3 Berger W H, Smetacek V S,Wefer G.Ocean productivity and paleoproductivity-An overview.In: Berger W H,Smetacek V S,Wefer G eds.Productivity of the Ocean Present and Past: Report of the Dahlem Workshop on Productivity of the Ocean. Berlin: Wiley-Interscience,1989.1~34
[4]  4 Froelich P N, Klinkhammer G P,Bender M L et al.Early oxidation of organic-matter in pelagic sediments of the eastern equatorial Atlantic: Suboxic diagenesis. Geochimica et Cosmochimica Acta,1979, 43 (7):1075~1090
[5]  5 Meyers P A. Organic geochemical proxies of paleoceangraphic,paleolimnologic,and paleoclimatic processes. Organic Geochemistry,1997, 27 (5~6):213~250
[6]  8 Turekian K K, Tausch E H.Barium in deep-sea sediments of the Atlantic Ocean. Nature,1964, 201 :696~697
[7]  9 Paytan A, Kastner M,Chavez F P.Glacial to interglacial fluctuations in productivity in the equatorial Pacific as indicated by marine barite. Science,1996, 274 :1355~1357
[8]  10 Dymond J, Suess E,Lyle M.Barium in deep-sea sediment: A geochemical proxy for paleoproductivity. Paleoceanography,1992, 7 (2):163~181
[9]  11 Paytan A, Kastner M.Benthic Ba fluxes in the Central Equatorial Pacific,implications for the oceanic Ba cycle. Earth and Planetary Science Letters,1996, 142 (3~4):439~450
[10]  12 Schmitz B. Barium,equatorial high productivity and the northward wandering of the Indian continent. Paleoceanography,1987, 2 (1):63~77
[11]  13 Hanor J S. Barite saturation in sea water. Geochimica et Cosmochimica Acta,1969, 33 (7):894~898
[12]  14 Church T M, Wolgemuth K.Marine barite saturation. Earth and Planetary Science Letters,1972, 15 (1):35~44
[13]  15 Wolgemut K, Broecker W.Barium content of ocean waters. Transactions—American Geophysical Union,1970, 51 (4): 326
[14]  16 Chan L H, Edmond J M,Stallard R F et al.Radium and barium at GEOSECS stations in the Atlantic and Pacific. Earth and Planetary Science Letters,1976, 32 (2):258~267
[15]  36 Dymond J, Collier R,McManus J et al.Can the aluminum and titanium contents of ocean sediments be used to determine the paleoproductivity of the oceans?Paleoceanography,1997, 12 (4):586~593
[16]  43 Church T M. Marine barite.San Diego,La Jolla,CA: Ph.D.thesis of University of California,1970.1~212
[17]  44 Gonneea M E, Paytan A.Phase associations of Barium in marine sediments. Marine Chemistry,2006, 100 (1~2):124~135
[18]  45 Collier R, Edmond J.The trace elements geochemistry of marine biogenic particulate matter. Progress in Oceanography,1984, 13 :113~199
[19]  46 Tessier A, Campbell P G C,Bisson M.Sequential extraction procedure for the speciation of particulate trace-metals. Analytical Chemistry,1979, 51 (7):844~851
[20]  48 Francois R, Honjo S,Manganini S J et al.Biogenic Barium fluxes to the deep sea: Implications for paleoproductivity reconstruction. Global Biogeochemical Cycles,1995, 9 (2):289~304
[21]  49 Anderson, R F,Winckler G.Problems with paleoproductivity proxies. Paleoceanography,2005, 20 : PA3012,doi: 10.1029/2004PA001107
[22]  50 Marcantonio F, Anderson R F,Higgins S et al.Sediment focusing in the central equatorial Pacific Ocean. Paleoceanography,2001, 16 :260~267
[23]  51 Francois R, Frank M,van der Loeff M M R et al.230 Th normalization: An essential tool for interpreting sedimentary fluxes during the Late Quaternary. Paleoceanography,2004, 19 : PA1018,doi: 10.1029/2003PA000939
[24]  52 Pirrung M, Illner P,Matthiessen J.Biogeic Barium in surface sediment of the European Nordic Seas. Marine Geology,2008, 250 (1~2):89~103
[25]  53 Pattan J N, Shane P.Excess aluminum in deep sea sediments of the Central Indian Basin. Marine Geology,1999, 161 (2~4):247~255
[26]  54 韦刚健,刘 颖,李献华等.南海沉积物中过剩铝问题的探讨.矿物岩石地球化学通报,2003, 22 (1):23~25
[27]  Wei Gangjian,Liu Ying,Li Xianhua et al.Excess Al in the sediments from South China Sea. Bulletin of Mineralogy,Petrology and Geochemistry,2003, 22 (1):23~25
[28]  64 Bayon G, German C R,Boella R M et al.An improved method for extracting marine sediment fractions and its application to Sr and Nd isotopic analysis. Chemical Geology,2002, 187 (3~4):179~199
[29]  65 Wei Gangjian, Li Xianhua,Liu Ying et al.Geochemical record of chemical weathering and monsoon climate change since the Early Miocene in the South China Sea. Paleoceanography,2006, 21 : PA4214,doi: 10.1029/2006PA001300
[30]  6 Brummer G J A, van Eijden A J M."Blue-ocean" paleoproductivity estimates from pelagic carbonate mass accumulation rates. Marine Micropaleontology,1992, 19 (1~2):99~117
[31]  7 Goldberg E D, Arrhenius G O S.Chemistry of Pacific pelagic sediments. Geochimica et Cosmochimica Acta,1958, 13 (2~3):153~212
[32]  17 Bacon M P, Edmond J M.Ba and Sr profiles from GEOSECS Ⅲ in S-W-Pacific. Transactions—American Geophysical Union, 1972, 53 (4): 402
[33]  18 Bacon M P, Edmond J M.Barium at GEOSECS-Ⅲ in South West Pacific. Earth and Planetary Science Letters,1972, 16 (1):66~74
[34]  19 Paytan A, Mearon S,Cobb K et al.Origin of marine barite deposits: Sr and S isotope characterization. Geology,2002, 30 (8):747~750
[35]  20 Gooday A J, Nott J A.Intracellular barite crystals in two Xenophyaphores,Aschemonellla ramuliformis and Galatheammina sp.with comments on the taxonomy of A.ramuliformis.Journal of the Marine Biological Association of the United Kingdom,1982, 62 :595~605
[36]  21 Bertram M A, Cowen J P.Morphological and compositional evidence for biotic precipitation of marine barite. Journal of Marine Research,1997, 55 (3):577~593
[37]  22 Bishop J K B. The Barite-opal-organic carbon association in oceanic particulate matter. Nature,1988, 332 :341~343
[38]  23 Bernstein R E, Byrne R H,Betzer P R et al.Morphologies and transformations of Celestite in seawater: The role of acantharians in strontium and barium geochemistry. Geochimica et Cosmochimica Acta,1992, 56 (8):3273~3279
[39]  24 Bernstein R E, Byrne R H,Schijf J.Acantharians: A missing link in the oceanic biogeochemistry of Barium. Deep-Sea Research Part Ⅰ,1998, 45 (2~3):491~505
[40]  25 Bernstein R E, Byrne R H.Acantharians and marine barite. Marine Chemistry,2004, 86 (1~2):45~50
[41]  26 Ganeshram R S, Francois R,Commeau J et al.An experimental investigation of barite formation in seawater. Geochimica et Cosmochimica Acta,2003, 67 (14):2599~2605
[42]  27 Stecher H A, Kogut M B.Rapid barium removal in the Delaware estuary. Geochimica et Cosmochimica Acta,1999, 63 (7~8):1003~1012
[43]  28 Paytan A, Kastner M,Martin E E et al.Marine barite as a monitor of seawater strontium isotope composition. Nature,1993, 366 :445~449
[44]  29 Paytan A. Marine barite: A recorder of oceanic chemistry,productivity and circulation.San Diego,CA: Ph.D.thesis of University of California,1996.1~246
[45]  30 Eagle M, Paytan A,Arrigo K R et al.A comparison between excess Barium and barite as indicators of carbon export. Paleoceanography,2003, 18 : 1060,doi: 10.1029/2002PA000922
[46]  31 Klump J, Hebbeln D,Wefer G.The impact of sediment provenance on Barium-based productivity estimates. Marine Geology,2000, 169 (3~4):259~271
[47]  32 Murray R W, Leinen M.Scavenged excess aluminum and its relationship to bulk titanium in biogenic sediment from the Central Equatorial Pacific Ocean. Geochimica et Cosmochimica Acta,1996, 60 (20):3869~3878
[48]  33 Murray R W, Knowlton C,Leinen M et al.Export production and terrigenous matter in the Central Equatorial Pacific Ocean during interglacial oxygen isotope Stage 11. Global and Planetary Change,2000, 24 (1):59~78
[49]  34 Reitz A, Pfeifer K,de Lange G J et al.Biogenic barium and the detrital Ba/Al ratio: A comparison of their direct and indirect determination. Marine Geology,2004, 204 :289~300
[50]  35 Murray R W, Leinen M,Isern A R.Biogenic flux of Al to sediment in the Central Equatorial Pacific Ocean: Evidence for increased productivity during glacial periods. Paleoceanography,1993, 8 (5):651~670
[51]  37 Banakar V K, Pattan J N,Mudholkar A V.Palaeoceanographic conditions during the formation of a ferromanganese crust from the Afanasiy-Nikitin seamount,North Central Indian Ocean: Geochemical evidence. Marine Geology,1997, 136 (3~4):299~315
[52]  38 Bonn W J, Gingele F X,Grobe H et al.Palaeoproductivity at the Antarctic continental margin: Opal and Barium records for the last 400ka. Palaeogeography,Palaeoclimatology,Palaeoecology,1998, 139 (3~4):195~211
[53]  39 Schroeder J O, Murray R W,Leinen M et al.Barium in Equatorial Pacific carbonate sediment: Terrigenous,oxide,and biogenic associations. Paleoceanography,1997, 12 (1):125~146
[54]  40 Nürnberg C C, Bohrmann G,Schlüter M et al.Barium accumulation in the Atlantic sector of the Southern Ocean: Results from 190,000-year records. Paleoceanography,1997, 12 (4):594~603
[55]  41 Rutten A, de Lange G J.A novel selective extraction of barite,and its application to Eastern Mediterranean sediments. Earth and Planetary Science Letters,2002, 198 (1~2):11~24
[56]  42 Tribovillard N, Algeo T J,Lyons T et al.Trace metals as paleoredox and paleoproductivity proxies: An update. Chemical Geology,2006, 232 (1~2):12~32
[57]  47 McManus J, Berelson W M,Klinkhammer G P et al.Geochemistry of Barium in marine sediments: Implications for its use as a paleoproxy. Geochimica et Cosmochimica Acta,1998, 62 (21~22):3453~3473
[58]  55 Diester-Haass L, Billups K,Grcke D R et al.Mid-Miocene paleoproductivity in the Atlantic Ocean and implications for the global carbon cycle. Paleoceanography,2009, 24 : PA1209,doi: 10.1029/2008PA001605
[59]  56 Gallego-Torres D, Martinez-Ruiz F,de Lange G J et al.Trace-elemental derived paleoceanographic and paleoclimatic conditions for Pleistocene Eastern Mediterranean sapropels. Palaeogeography,Palaeoclimatology,Palaeoecology,2010, 293 (1~2):76~89
[60]  57 Wei Gangjian, Liu Ying,Li Xianhua et al.High-resolution elemental records from the South China Sea and their paleoproductivity implications. Paleoceanography,2003, 18 : 1054,doi: 10.1029/2002PA000826
[61]  58 蔡观强,邱 燕,彭学超等.南海西南海域表层沉积物中微量元素Ba的地球化学特征.现代地质,2010, 24 (3):560~569
[62]  Cai Guanqiang,Qiu Yan,Peng Xuechao et al.Geochemical characteristics of barium in surface sediments from the southwestern area of South China Sea. Ceoscience,2010, 24 (3):560~569
[63]  59 邹 亮,韦刚健.早中新世以来南海北部陆坡古生产力的碳酸盐和生物成因Ba元素记录.地球化学,2009, 38 (1):89~95
[64]  Zou Liang,Wei Gangjian.Carbonate and biogenic Ba records of paleoproductivity since the Early Miocene in Northern South China Sea. Geochimica,2009, 38 (1):89~95
[65]  60 Sutherland R A, Tack F M G.Determination of Al,Cu,Fe,Mn,Pb and Zn in certified reference materials using the optimized BCR sequential extraction procedure. Analytica Chimica Acta,2002, 454 (2):249~257
[66]  61 Sutherland R A, Tack F M G.Extraction of labile metals from solid media by dilute hydrochloric acid. Environmental Monitoring and Assessment,2008, 138 (1~3):119~130
[67]  62 Eisenhauer A, Meyer H,Rachold V et al.Grain size separation and sediment mixing in Arctic Ocean sediments: Evidence from the strontium isotope systematic. Chemical Geology,1999, 158 (3~4):173~188
[68]  63 Stille P, Clauer N.The process of glauconitization: Chemical and isotopic evidence. Contributions to Mineralogy and Petrology,1994, 117 (3):253~262

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