Enhanced biogeochemical cycling and subsequent reduction of hydraulic conductivity associated with soil-layer interfaces in the vadose zone.
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[1] B. Mohanty,et al. Effective hydraulic parameters for steady state vertical flow in heterogeneous soils , 2003 .
[2] M. Matyjasik,et al. Vadose zone – challenges in hydrochemistry , 2002 .
[3] G. Gran. Determination of the equivalence point in potentiometric titrations. Part II , 1952 .
[4] D. Lovley,et al. Availability of Ferric Iron for Microbial Reduction in Bottom Sediments of the Freshwater Tidal Potomac River , 1986, Applied and environmental microbiology.
[5] A. Klute,et al. Physical and mineralogical methods , 1986 .
[6] J. Dupont,et al. Chemical characterization of porewaters in an intertidal mudflat of the Seine estuary: relationship to erosion-deposition cycles. , 2004, Marine pollution bulletin.
[7] W. Lindsay,et al. Development of a DTPA soil test for zinc, iron, manganese and copper , 1978 .
[8] I. Cozzarelli,et al. Evaluation of sulfate reduction at experimentally induced mixing interfaces using small-scale push-pull tests in an aquifer-wetland system , 2007 .
[9] Binayak P. Mohanty,et al. Near‐Surface Soil Moisture Assimilation for Quantifying Effective Soil Hydraulic Properties under Different Hydroclimatic Conditions , 2008 .
[10] J. Six,et al. A history of research on the link between (micro)aggregates, soil biota, and soil organic matter dynamics , 2004 .
[11] B. Mohanty,et al. Spatial Averaging of van Genuchten Hydraulic Parameters for Steady‐State Flow in Heterogeneous Soils: A Numerical Study , 2002 .
[12] L. Elsgaard,et al. Microbial biomass and numbers of denitrifiers related to macropore channels in agricultural and forest soils , 1999 .
[13] T. Illangasekare,et al. Retention of liquid contaminants in layered soils , 1999 .
[14] A. Mehlich. New extractant for soil test evaluation of phosphorus, potassium, magnesium, calcium, sodium, manganese and zinc , 1978 .
[15] A. Göttlein,et al. Analysis of Small Volumes of Soil Solution by Capillary Electrophoresis , 1996 .
[16] P. Hänninen,et al. Occurrence and rates of terminal electron-accepting processes and recharge processes in petroleum hydrocarbon-contaminated subsurface. , 2006, Journal of environmental quality.
[17] D. Lovley,et al. Hydrogen concentrations as an indicator of the predominant terminal electron-accepting reactions in aquatic sediments , 1988 .
[18] Francis H. Chapelle,et al. Ground-water microbiology and geochemistry , 1993 .
[19] B. Bekins,et al. Progression of methanogenic degradation of crude oil in the subsurface , 2005 .
[20] A. Klute. Methods of soil analysis. Part 1. Physical and mineralogical methods. , 1988 .
[21] I. Cozzarelli,et al. Geochemical and microbiological methods for evaluating anaerobic processes in an aquifer contaminated by landfill leachate. , 2000 .
[22] P. Adriaens,et al. Comparison of Eh and H2 Measurements for Delineating Redox Processes in a Contaminated Aquifer , 1996 .
[23] G. Luther,et al. Chemistry of iron sulfides. , 2007, Chemical reviews.
[24] Henning Prommer,et al. Modelling the fate of oxidisable organic contaminants in groundwater. In C. T. Miller, M. B. Parlange, and S. M. Hassanizadeh (editors), , 2002 .
[25] D. Hillel. Introduction to environmental soil physics , 1982 .
[26] I. Cozzarelli,et al. Centimeter-scale characterization of biogeochemical gradients at a wetland–aquifer interface using capillary electrophoresis , 2007 .
[27] A. Mehlich. Mehlich 3 soil test extractant: A modification of Mehlich 2 extractant , 1984 .
[28] Jianting Zhu,et al. Spatial Averaging of van Genuchten Hydraulic Parameters for Steady‐State Flow in Heterogeneous Soils: A Numerical Study , 2002 .
[29] R. M. Lehman,et al. Pore‐size constraints on the activity and survival of subsurface bacteria in a late cretaceous shale‐sandstone sequence, northwestern New Mexico , 1997 .
[30] A. Schippers,et al. Quantitative Microbial Community Analysis of Three Different Sulfidic Mine Tailing Dumps Generating Acid Mine Drainage , 2008, Applied and Environmental Microbiology.
[31] R. Mulvaney. Nitrogen-Inorganic Forms , 2018, SSSA Book Series.
[32] C. Dirksen,et al. Hydraulic Conductivity and Diffusivity: Laboratory Methods , 2018, SSSA Book Series.
[33] J. Tisdall,et al. Organic matter and water‐stable aggregates in soils , 1982 .
[34] J. Rosenfeld,et al. Ammonium adsorption in nearshore anoxic sediments1 , 1979 .
[35] M. Iqbal. Effects of layered heterogeneity in subsurface geologic materials on solute transport under field conditions: A case study from northeastern Iowa, USA , 2000 .
[36] I. Cozzarelli,et al. Sources of sulfate supporting anaerobic metabolism in a contaminated aquifer. , 2003, Environmental science & technology.
[37] Peter Blaser,et al. Preferential Flow Paths: Biological Hot Spots in Soils , 2001 .
[38] Miroslav Šejna,et al. Development and Applications of the HYDRUS and STANMOD Software Packages and Related Codes , 2008 .
[39] N. Fierer,et al. Microbial Processes in the Vadose Zone , 2005 .
[40] D. Osmond,et al. Construction of platinum-tipped redox probes for determining soil redox potential. , 2004, Journal of environmental quality.
[41] G. Gran,et al. Determination of the Equivalent Point in Potentiometric Titrations. , 1950 .
[42] Philippe Van Cappellen,et al. Kinetic modeling of microbially-driven redox chemistry of subsurface environments : coupling transport, microbial metabolism and geochemistry , 1998 .
[43] Anaerobic processes in soil , 1984 .
[44] David W. Blowes,et al. Multicomponent reactive transport modeling in variably saturated porous media using a generalized formulation for kinetically controlled reactions , 2002 .
[45] R. Conrad,et al. Competition for electron donors among nitrate reducers, ferric iron reducers, sulfate reducers, and methanogens in anoxic paddy soil , 2004, Biology and Fertility of Soils.
[46] R. Lal,et al. Soil structure and management: a review , 2005 .
[47] I. Cozzarelli,et al. Anaerobic methane oxidation in a landfill-leachate plume. , 2002, Environmental science & technology.
[48] W. Emerson,et al. Soil Aggregates — Formation and Stability , 1990 .
[49] B. Herbert,et al. Evaluation of Platinum Electrodes and Three Electrode Potential Standards to Determine Electrode Quality , 2005 .
[50] Kelly P. Nevin,et al. Dissimilatory Fe(III) and Mn(IV) reduction. , 1991, Advances in microbial physiology.
[51] M. Klug,et al. Temporal variations in parameters reflecting terminal-electron-accepting processes in an aquifer contaminated with waste fuel and chlorinated solvents , 2000 .
[52] S. Faulkner,et al. Redox Measurements of Soils , 2018, SSSA Book Series.
[53] S. Beauchemin,et al. Continuous multiple measurement of soil redox potential using platinum microelectrodes , 2002 .
[54] Durell C. Dobbins,et al. Microbial Biomass, Activity, and Community Structure in Subsurface Soils , 1986 .
[55] R. Bartha,et al. The Sulphate-Reducing Bacteria , 1979 .
[56] R. K. Schofield,et al. Measurement of soil pH , 1955 .
[57] D. A. Barry,et al. Modelling of physical and reactive processes during biodegradation of a hydrocarbon plume under transient groundwater flow conditions. , 2002, Journal of contaminant hydrology.
[58] F. Brockman,et al. Microbial reduction of hexavalent chromium under vadose zone conditions. , 2003, Journal of environmental quality.