Anaerobic oxidation of methane (AOM) in marine sediments from the Skagerrak (Denmark): II. Reaction-transport modeling
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Andrew W. Dale | Pierre Regnier | Bo Barker Jørgensen | B. Jørgensen | N. Knab | P. Régnier | P. Cappellen | A. Dale | Nina J. Knab | P. Van Cappellen
[1] Andrew W. Dale,et al. Bioenergetic Controls on Anaerobic Oxidation of Methane (AOM) in Coastal Marine Sediments: A Theoretical Analysis , 2006 .
[2] B. Schink. Energetics of syntrophic cooperation in methanogenic degradation , 1997, Microbiology and molecular biology reviews : MMBR.
[3] B. Boudreau. On the Equivalence of Nonlocal and Radial-Diffusion Models for Porewater Irrigation , 1984 .
[4] K. Nauhaus,et al. Microbial methane turnover in different marine habitats , 2005 .
[5] Tori M. Hoehler,et al. Field and laboratory studies of methane oxidation in an anoxic marine sediment: Evidence for a methanogen‐sulfate reducer consortium , 1994 .
[6] Daniel Rokhsar,et al. Reverse Methanogenesis: Testing the Hypothesis with Environmental Genomics , 2004, Science.
[7] Rudolf Amann,et al. A conspicuous nickel protein in microbial mats that oxidize methane anaerobically , 2003, Nature.
[8] D. LaRowe,et al. Quantifying the energetics of metabolic reactions in diverse biogeochemical systems: electron flow and ATP synthesis , 2007 .
[9] J. Middelburg. A simple rate model for organic matter decomposition in marine sediments , 1989 .
[10] D. Burdige. Preservation of organic matter in marine sediments: controls, mechanisms, and an imbalance in sediment organic carbon budgets? , 2007, Chemical reviews.
[11] D. Burdige,et al. Dissolved and particulate carbohydrates in contrasting marine sediments , 2000 .
[12] P. Regnier,et al. A knowledge‐based reactive transport approach for the simulation of biogeochemical dynamics in Earth systems , 2005 .
[13] J. Fry,et al. Bacterial populations and processes in sediments containing gas hydrates (ODP Leg 146: Cascadia Margin) , 1996 .
[14] Thomas D. Brock,et al. Anaerobic Methane Oxidation: Occurrence and Ecology , 1980, Applied and environmental microbiology.
[15] Peter Berg,et al. Dynamic Modeling of Early Diagenesis and Nutrient Cycling. A Case Study in an Artic Marine Sediment , 2003 .
[16] D. Hammond,et al. Early oxidation of organic matter in pelagic sediments of the eastern equatorial Atlantic: suboxic diagenesis , 1979 .
[17] T. Hoehler. Biological energy requirements as quantitative boundary conditions for life in the subsurface , 2004 .
[18] K. Nauhaus,et al. In vitro demonstration of anaerobic oxidation of methane coupled to sulphate reduction in sediment from a marine gas hydrate area. , 2002, Environmental microbiology.
[19] C. Arnosti,et al. Anaerobic carbon transformation: Experimental studies with flow-through cells , 2003 .
[20] H. Haas,et al. Recent sedimentation and organic carbon burial in a shelf sea: the North Sea , 1997 .
[21] C. Martens,et al. Seasonal variations in production and consumption rates of dissolved organic carbon in an organic-rich coastal sediment , 1994 .
[22] A. Boetius,et al. Molecular biogeochemistry of sulfate reduction, methanogenesis and the anaerobic oxidation of methane at Gulf of Mexico cold seeps , 2005 .
[23] Robert A. Berner,et al. Early Diagenesis: A Theoretical Approach , 1980 .
[24] P. Mccarty,et al. Environmental Biotechnology: Principles and Applications , 2000 .
[25] Bernard P. Boudreau,et al. On a reactive continuum representation of organic matter diagenesis , 1991 .
[26] Ronald S. Oremland,et al. Methanogenesis and Sulfate Reduction: Competitive and Noncompetitive Substrates in Estuarine Sediments , 1982 .
[27] R. Barnes,et al. Methane production and consumption in anoxic marine sediments , 1976 .
[28] B. Jørgensen,et al. Prokaryotic cells of the deep sub-seafloor biosphere identified as living bacteria , 2005, Nature.
[29] T. Treude,et al. Anaerobic oxidation of methane and sulfate reduction along the Chilean continental margin , 2005 .
[30] C. Martens,et al. Thermodynamic control on hydrogen concentrations in anoxic sediments , 1998 .
[31] Carlo H. R. Heip,et al. Reactive transport in surface sediments. II. Media: an object-oriented problem-solving environment for early diagenesis , 2003 .
[32] Yifeng Wang,et al. Cycling of iron and manganese in surface sediments; a general theory for the coupled transport and reaction of carbon, oxygen, nitrogen, sulfur, iron, and manganese , 1996 .
[33] P. Hall,et al. Factors influencing organic carbon recycling and burial in Skagerrak sediments. , 2004 .
[34] P. Crill,et al. Methane production from bicarbonate and acetate in an anoxic marine sediment , 1986 .
[35] B. Jørgensen,et al. Biogeochemistry and biodiversity of methane cycling in subsurface marine sediments (Skagerrak, Denmark). , 2007, Environmental microbiology.
[36] J. Jensen,et al. Shallow gas depth-contour map of the Skagerrak-western Baltic Sea region , 2007 .
[37] B. Jørgensen,et al. Sulfate reduction and anaerobic methane oxidation in Black Sea sediments , 2001 .
[38] Olaf Pfannkuche,et al. A marine microbial consortium apparently mediating anaerobic oxidation of methane , 2000, Nature.
[39] Pierre Regnier,et al. Quantitative interpretation of pH distributions in aquatic sediments: A reaction-transport modeling approach , 2005 .
[40] Peter M. J. Herman,et al. Dynamic response of deep-sea sediments to seasonal variations: A model , 1996 .
[41] Carol A. Hee,et al. Dissolved organic carbon production and consumption in anoxic marine sediments: A pulsed‐tracer experiment , 2001 .
[42] H. Schulz. Quantification of Early Diagenesis: Dissolved Constituents in Marine Pore Water , 2000 .
[43] T. Ferdelman,et al. Sulfate reduction and methane oxidation in continental margin sediments influenced by irrigation (South-East Atlantic off Namibia) , 2000 .
[44] Stephen H. Zinder,et al. Isolation and Characterization of a Thermophilic Bacterium Which Oxidizes Acetate in Syntrophic Association with a Methanogen and Which Grows Acetogenically on H2-CO2 , 1988, Applied and environmental microbiology.
[45] Q. Jin,et al. Predicting the rate of microbial respiration in geochemical environments , 2005 .
[46] P. Berg,et al. Solute-specific pore water irrigation: Implications for chemical cycling in early diagenesis , 2005 .
[47] D. Burdige,et al. Factors affecting dissolved organic matter dynamics in mixed-redox to anoxic coastal sediments , 2004 .
[48] M. Lidstrom,et al. Microbial Growth on C1 Compounds , 1996, Springer Netherlands.
[49] K. Nauhaus,et al. Environmental regulation of the anaerobic oxidation of methane: a comparison of ANME-I and ANME-II communities. , 2005, Environmental microbiology.
[50] D. Canfield,et al. The anaerobic degradation of organic matter in Danish coastal sediments: iron reduction, manganese reduction, and sulfate reduction. , 1993, Geochimica et cosmochimica acta.
[51] R. Jakobsen,et al. Redox zoning, rates of sulfate reduction and interactions with Fe-reduction and methanogenesis in a shallow sandy aquifer, Rømø, Denmark , 1999 .
[52] C. Arnosti,et al. Carbohydrate dynamics and contributions to the carbon budget of an organic-rich coastal sediment , 1999 .
[53] B. Thamdrup,et al. Composition and diagenesis of neutral carbohydrates in sediments of the Baltic-North Sea transition , 2005 .
[54] D. Lovley,et al. Hydrogen concentrations as an indicator of the predominant terminal electron-accepting reactions in aquatic sediments , 1988 .
[55] W. Reeburgh. “Soft Spots” in the Global Methane Budget , 1996 .
[56] B. Jørgensen,et al. Anaerobic oxidation of methane (AOM) in marine sediments from the Skagerrak (Denmark): I. Geochemical and microbiological analyses , 2008 .
[57] D. Burdige,et al. Molecular weight distribution of dissolved organic carbon in marine sediment pore waters , 1998 .
[58] Seigo Shima,et al. Methyl-coenzyme M reductase and the anaerobic oxidation of methane in methanotrophic Archaea. , 2005, Current opinion in microbiology.
[59] J. Amend,et al. Energetics of overall metabolic reactions of thermophilic and hyperthermophilic Archaea and bacteria. , 2001, FEMS microbiology reviews.
[60] E. Kristensen,et al. Coexistence of sulfate reduction and methane production in an organic-rich sediment , 1994 .
[61] Bernard P. Boudreau,et al. Diagenetic Models and Their Implementation: Modelling Transport and Reactions in Aquatic Sediments , 1996 .
[62] Alfons J. M. Stams,et al. Sulfate reduction in methanogenic bioreactors , 1994 .