Early diagenetic alteration of organic matter by sulfate reduction in Quaternary sediments from the northeastern Arabian Sea
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[1] H. Schulz,et al. Multiple monsoon-controlled breakdown of oxygen-minimum conditions during the past 30,000 years documented in laminated sediments off Pakistan , 1999 .
[2] D. Welte,et al. Quantification of Organic Matter Degradation by Microbial Sulphate Reduction for Quaternary Sediments from the Northern Arabian Sea , 1997, Naturwissenschaften.
[3] R. Jahnke,et al. Influence of water-column anoxia on the elemental fractionation of carbon and phosphorus during sediment diagenesis , 1997 .
[4] R. Littke,et al. Comparative study of organic matter preservation in immature sediments along the continental margins of Peru and Oman. Part I: Results of petrographical and bulk geochemical data , 1996 .
[5] H. Schulz,et al. Sampling the oxygen minimum zone off Pakistan: glacial-interglacial variations of anoxia and productivity (preliminary results, sonne 90 cruise) , 1995 .
[6] D. Canfield,et al. The production of 34S-depleted sulfide during bacterial disproportionation of elemental sulfur. , 1994, Science.
[7] A. Demény,et al. Hydrogen index as reflecting intensity of sulphidic diagenesis in non-bioturbated, shaly sediments , 1994 .
[8] Ellery D. Ingall,et al. Benthic phosphorus regeneration, net primary production, and ocean anoxia: A model of the coupled marine biogeochemical cycles of carbon and phosphorus , 1994 .
[9] K. Emeis,et al. Zur Systematik der Kohlenstoff-Schwefel-Eisen-Verhältnisse in Auftriebssedimenten , 1993 .
[10] A. Desprairies,et al. Organic matter composition and sulfate reduction intensity in Oman Margin sediments , 1993 .
[11] J. Damsté,et al. Sulphur-bound steroid and phytane carbon skeletons in geomacromolecules: Implications for the mechanism of incorporation of sulphur into organic matter , 1993 .
[12] R. Tyson,et al. Modern and Ancient Continental Shelf Anoxia , 1993 .
[13] J. Hayes,et al. Transport and reduction of sulfate and immobilization of sulfide in marine black shales , 1993 .
[14] K. Bartle,et al. The functionality of organic nitrogen in some recent sediments from the Peru upwelling region , 1992 .
[15] J. Haugen,et al. Amino acid diagenesis, organic carbon and nitrogen mineralization in surface sediments from the inner Oslofjord, Norway , 1991 .
[16] Cliff D. Taylor,et al. Comparison of methods to determine degree of pyritization , 1990 .
[17] B. Jørgensen,et al. A Thiosulfate Shunt in the Sulfur Cycle of Marine Sediments , 1990, Science.
[18] W. L. Orr,et al. Geochemistry of sulfur in fossil fuels , 1990 .
[19] W. Dean,et al. Iron-sulfur-carbon relationships in organic-carbon-rich sequences I: Cretaceous Western Interior seaway , 1989 .
[20] J. Damsté,et al. Organic sulphur in macromolecular sedimentary organic matter: I. Structure and origin of sulphur-containing moieties in kerogen, asphaltenes and coal as revealed by flash pyrolysis , 1989 .
[21] D. Welte,et al. Petroleum Formation and Occurrence , 1989 .
[22] J. Hedges,et al. Processes controlling the organic carbon content of open ocean sediments , 1988 .
[23] R. Berner,et al. Degree of Pyritization of Iron as a Paleoenvironmental Indicator of Bottom-Water Oxygenation , 1988 .
[24] J. Brooks,et al. Marine Petroleum Source Rocks , 1987 .
[25] D. Canfield,et al. The use of chromium reduction in the analysis of reduced inorganic sulfur in sediments and shales , 1986 .
[26] R. Berner,et al. Pyrite formation in euxinic and semi-euxinic sediments , 1985 .
[27] Robert A. Berner,et al. Bioturbation and the early diagenesis of carbon and sulfur , 1985 .
[28] M. Bender,et al. Fate of organic carbon reaching the deep sea floor: a status report☆ , 1984 .
[29] R. Berner. Sedimentary pyrite formation: An update , 1984 .
[30] R. Cook,et al. The Major Biogeochemical Cycles and Their Interactions. , 1983 .
[31] Robert Raiswell,et al. Burial of organic carbon and pyrite sulfur in sediments over phanerozoic time: a new theory , 1983 .
[32] R. Jahnke,et al. Pore waters of the central Pacific Ocean: Nutrient results , 1982 .
[33] B. Jørgensen. Mineralization of organic matter in the sea bed—the role of sulphate reduction , 1982, Nature.
[34] P. Müller,et al. Productivity, sedimentation rate, and sedimentary organic matter in the oceans—I. Organic carbon preservation , 1979 .
[35] D. Hammond,et al. Early oxidation of organic matter in pelagic sediments of the eastern equatorial Atlantic: suboxic diagenesis , 1979 .
[36] P. Müller. CN ratios in Pacific deep-sea sediments: Effect of inorganic ammonium and organic nitrogen compounds sorbed by clays , 1977 .
[37] Isaac R. Kaplan,et al. Natural Gases in Marine Sediments , 1974, Marine Science.
[38] H. Schulz,et al. Laminated sediments from the oxygen-minimum zone of the northeastern Arabian Sea , 1996, Geological Society, London, Special Publications.
[39] Lei Chou,et al. Interactions of C, N, P and S Biogeochemical Cycles and Global Change: NATO ASI Series I: Global Environmental Change, Vol. 4, 521p. , 1993 .
[40] R. Berner,et al. The Nature of Phosphorus Burial in Modern Marine Sediments , 1993 .
[41] R. Bustin,et al. Influence of water column anoxia on the burial and preservation of carbon and phosphorus in marine shales , 1993 .
[42] A. Schimmelmann,et al. Evolutionary changes over the last 1000 years of reduced sulfur phases and organic carbon in varved sediments of the Santa Barbara Basin, California , 1993 .
[43] Hervé Grall,et al. 36. ORGANIC PETROLOGY OF NEOGENE SEDIMENTS FROM NORTH INDIAN OCEAN (LEG 117): AMOUNT, TYPE, AND PRESERVATION OF ORGANIC MATTER1 , 1991 .
[44] D. Baker,et al. Keys to the depositional history of the Posidonia Shale (Toarcian) in the Hils Syncline, northern Germany , 1991, Geological Society, London, Special Publications.
[45] J. Damsté,et al. Characterization of organically bound sulfur in high-molecular-weight, sedimentary organic matter using flash pyrolysis and Raney Ni desulfurization , 1990 .
[46] D. Canfield,et al. Sulfate reduction and oxic respiration in marine sediments: implications for organic carbon preservation in euxinic environments. , 1989, Deep-sea research. Part A, Oceanographic research papers.
[47] S. Henrichs,et al. Early diagenesis of amino acids and organic matter in two coastal marine sediments , 1987 .
[48] W. Reeburgh,et al. Anaerobic mineralization of marine sediment organic matter: Rates and the role of anaerobic processes in the oceanic carbon economy , 1987 .
[49] J. D. Hudson,et al. Pyrite formation in Jurassic shales of contrasting biofacies , 1987, Geological Society, London, Special Publications.
[50] R. Francois. A study of sulphur enrichment in the humic fraction of marine sediments during early diagenesis , 1987 .
[51] J. Leventhal. An interpretation of carbon and sulfur relationships in Black Sea sediments as indicators of environments of deposition , 1983 .
[52] Robert A. Berner,et al. Early Diagenesis: A Theoretical Approach , 1980 .
[53] J. Espitalie,et al. Méthode rapide de caractérisation des roches mètres, de leur potentiel pétrolier et de leur degré d'évolution , 1977 .
[54] George E. Claypool,et al. The Origin and Distribution of Methane in Marine Sediments , 1974 .
[55] K. Wyrtki,et al. Physical Oceanography of the Indian Ocean , 1973 .
[56] S. Gerlach,et al. The Biology of the Indian Ocean , 1973, Ecological Studies.
[57] R. Berner. Sedimentary pyrite formation , 1970 .