Effects of drying–rewetting frequency on soil carbon and nitrogen transformations
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[1] R. Scholes,et al. NO and N2O emissions from savanna soils following the first simulated rains of the season , 1997, Nutrient Cycling in Agroecosystems.
[2] M. Caldwell,et al. A large ephemeral release of nitrogen upon wetting of dry soil and corresponding root responses in the field , 1997, Plant and Soil.
[3] M. Firestone,et al. Linking microbial community composition to function in a tropical soil , 2000 .
[4] Paul E. Gessler,et al. Modeling Soil–Landscape and Ecosystem Properties Using Terrain Attributes , 2000 .
[5] V. Huhta,et al. Temporal and spatial fluctuations in moisture affect humus microfungal community structure in microcosms , 2000, Biology and Fertility of Soils.
[6] M. Firestone,et al. Release of Intracellular Solutes by Four Soil Bacteria Exposed to Dilution Stress , 2000 .
[7] Alan K. Knapp,et al. Altering Rainfall Timing and Quantity in a Mesic Grassland Ecosystem: Design and Performance of Rainfall Manipulation Shelters , 2000, Ecosystems.
[8] A. Franzluebbers,et al. Flush of carbon dioxide following rewetting of dried soil relates to active organic pools. , 2000 .
[9] L. Jackson,et al. Rapid response of soil microbial communities from conventional, low input, and organic farming systems to a wet/dry cycle , 1999 .
[10] L. Jackson,et al. Wet–dry cycles affect dissolved organic carbon in two California agricultural soils , 1999 .
[11] J. Schimel,et al. Moisture effects on microbial activity and community structure in decomposing birch litter in the Alaskan taiga , 1999 .
[12] J. Magid,et al. Drying and rewetting of a loamy sand soil did not increase the turnover of native organic matter, but retarded the decomposition of added 14C-labelled plant material , 1999 .
[13] E. Bremer,et al. Uptake and synthesis of compatible solutes as microbial stress responses to high-osmolality environments , 1998, Archives of Microbiology.
[14] T. Appel. Non-biomass soil organic N — the substrate for N mineralization flushes following soil drying–rewetting and for organic N rendered CaCl2-extractable upon soil drying , 1998 .
[15] Bruno Mary,et al. Modelling temperature and moisture effects on C-N transformations in soils: comparison of nine models , 1997 .
[16] J. Schimel,et al. Microbial response to freeze-thaw cycles in tundra and taiga soils , 1996 .
[17] David S. Powlson,et al. Evaluation of Soil Organic Matter Models , 1996 .
[18] P. Groffman,et al. Bioavailability of water extractable organic carbon fractions in forest and agricultural soil profiles , 1996 .
[19] R. Merckx,et al. Spatial distribution of microbial biomass in microaggregates of a silty-loam soil and the relation with the resistance of microorganisms to soil drying , 1996 .
[20] W. McGill. Review and Classification of Ten Soil Organic Matter (SOM) Models , 1996 .
[21] M. Firestone,et al. Mechanisms for soil moisture effects on activity of nitrifying bacteria , 1995, Applied and environmental microbiology.
[22] A. Franzluebbers,et al. Carbon and nitrogen mineralization from cowpea plants part decomposing in moist and in repeatedly dried and wetted soil , 1994 .
[23] J. Schimel,et al. Reduction in microbial activity in Birch litter due to drying and rewetting event , 1994 .
[24] P. Howard,et al. Relationships between CO2 evolution, moisture content and temperature for a range of soil types , 1993 .
[25] J. Schimel,et al. Decomposition and biomass incorporation of 14c-labeled glucose and phenolics in taiga forest floor: effect of substrate quality, successional state, and season , 1993 .
[26] M. Cabrera. Modeling the Flush of Nitrogen Mineralization Caused by Drying and Rewetting Soils , 1993 .
[27] E. Davidson,et al. Processes Regulating Soil Emissions of NO and N^2O in a Seasonally Dry Tropical Forest , 1993 .
[28] R. Merckx,et al. Microbial biomass responses to soil drying and rewetting: The fate of fast- and slow-growing microorganisms in soils from different climates , 1993 .
[29] P. D. Ruiter,et al. Microbial numbers and activity in dried and rewetted arable soil under integrated and conventional management , 1992 .
[30] M. Firestone,et al. Relationship between Desiccation and Exopolysaccharide Production in a Soil Pseudomonas sp , 1992, Applied and environmental microbiology.
[31] M. Amato,et al. Microbial biomass responses to seasonal change and imposed drying regimes at increasing depths of undisturbed topsoil profiles , 1992 .
[32] M. Firestone,et al. Microbial Production and Consumpution of Nitrate in an Annual Grassland , 1990 .
[33] R. Sampson,et al. Natural resources for the 21st century , 1990 .
[34] D. J. Ross. Estimation of soil microbial C by a fumigation-extraction method: influence of seasons, soils and calibration with the fumigation-incubation procedure. , 1990 .
[35] H. Insam. Are the soil microbial biomass and basal respiration governed by the climatic regime , 1990 .
[36] James M. Tiedje,et al. Denitrification Hysteresis During Wetting and Drying Cycles in Soil , 1988 .
[37] W. Parton,et al. Analysis of factors controlling soil organic matter levels in Great Plains grasslands , 1987 .
[38] M. Firestone,et al. Microbial biomass response to a rapid increase in water potential when dry soil is wetted , 1987 .
[39] P. Brookes,et al. AN EXTRACTION METHOD FOR MEASURING SOIL MICROBIAL BIOMASS C , 1987 .
[40] P. Bottner. Response of microbial biomass to alternate moist and dry conditions in a soil incubated with 14C- and 15N-labelled plant material , 1985 .
[41] R. F. Harris. Effect of Water Potential on Microbial Growth and Activity , 1981 .
[42] E. Youngs,et al. Fundamentals of Soil Physics. , 1982 .
[43] L. Belser,et al. Specific Inhibition of Nitrite Oxidation by Chlorate and Its Use in Assessing Nitrification in Soils and Sediments , 1980, Applied and environmental microbiology.
[44] J. Oades,et al. Physical factors influencing decomposition of organic materials in soil aggregates , 1978 .