Variation in soil phosphorus, sulfur, and iron pools among south Florida wetlands
暂无分享,去创建一个
[1] Joseph N. Boyer,et al. Spatial characterization of water quality in Florida Bay and Whitewater Bay by multivariate analyses: Zones of similar influence , 1997 .
[2] Andrew Heyes,et al. Sulfide Controls on Mercury Speciation and Bioavailability to Methylating Bacteria in Sediment Pore Waters , 1999 .
[3] M. Koch,et al. Distribution of soil and plant nutrients along a trophic gradient in the Florida Everglades. , 1992 .
[4] R. Howarth,et al. Soil-plant interactions in a neotropical mangrove forest: iron, phosphorus and sulfur dynamics , 1998, Oecologia.
[5] W. Perry. Elements of South Florida's Comprehensive Everglades Restoration Plan , 2004, Ecotoxicology.
[6] A. Bates,et al. Speciation and isotopic composition of sedimentary sulfur in the Everglades, Florida, USA , 1998 .
[7] Ronald D. Jones,et al. Decadal change in vegetation and soil phosphorus pattern across the Everglades landscape. , 2003, Journal of environmental quality.
[8] F. Sklar,et al. Importance of Storm Events in Controlling Ecosystem Structure and Function in a Florida Gulf Coast Estuary , 2004 .
[9] G. Powell,et al. Relationships between porewater nutrients and seagrasses in a subtropical carbonate environment , 1992, Marine Biology.
[10] M. Koch,et al. Solid-phase Phosphorus Pools in Highly Organic Carbonate Sediments of Northeastern Florida Bay , 2001 .
[11] P. Mccormick,et al. Periphyton-Water Quality Relationships along a Nutrient Gradient in the Northern Florida Everglades , 1996, Journal of the North American Benthological Society.
[12] S. Vink,et al. Sulfate reduction and sediment metabolism in Tomales Bay, California , 1994 .
[13] J. Fourqurean,et al. Responses of seagrass communities to fertilization along a gradient of relative availability of nitrogen and phosphorus in a carbonate environment , 2004 .
[14] M. Durako,et al. Forecasting responses of seagrass distributions to changing water quality using monitoring data , 2003 .
[15] L. M. Walter,et al. Coupling between sulfur recycling and syndepositional carbonate dissolution: evidence from oxygen and sulfur isotope composition of pore water sulfate, South Florida Platform, U.S.A. , 1999 .
[16] Ronald D. Jones,et al. Phosphorus cycling and partitioning in an oligotrophic Everglades wetland ecosystem: a radioisotope tracing study , 2003 .
[17] K. Brown,et al. Stratigraphic and micropetrographic occurrences of pyrite in sediments at the confluence of carbonate and peat-forming depositional systems, southern Florida, U.S.A. , 1995 .
[18] D. L. Reed,et al. Vegetation:environment relationships and water management in Shark Slough, Everglades National Park , 2003, Wetlands Ecology and Management.
[19] J. Harvey,et al. Tracing sources of sulfur in the Florida Everglades. , 2002, Journal of environmental quality.
[20] W. Dodds. THE ROLE OF PERIPHYTON IN PHOSPHORUS RETENTION IN SHALLOW FRESHWATER AQUATIC SYSTEMS , 2003 .
[21] S. Newman,et al. Spatio-temporal patterns of soil phosphorus enrichment in Everglades water conservation area 2A. , 2001, Journal of environmental quality.
[22] James W. Fourqurean,et al. Phosphorus limitation of primary production in Florida Bay: Evidence from C:N:P ratios of the dominant seagrass Thalassia testudinum , 1992 .
[23] M. Chimney,et al. Environmental impacts to the Everglades ecosystem: a historical perspective and restoration strategies. , 2001, Water science and technology : a journal of the International Association on Water Pollution Research.
[24] R. Howarth,et al. Forms and availability of sediment phosphorus in carbonate sand of Bermuda seagrass beds , 1998 .
[25] J. Day,et al. Standing crop and aboveground biomass partitioning of a dwarf mangrove forest in Taylor River Slough, Florida , 2004, Wetlands Ecology and Management.
[26] R. Twilley,et al. Patterns of mangrove forest structure and soil nutrient dynamics along the Shark River estuary, Florida , 1999 .
[27] Ronald D. Jones,et al. Short-term changes in phosphorus storage in an oligotrophic Everglades wetland ecosystem receiving experimental nutrient enrichment , 2002 .
[28] John C. Ogden,et al. Water Control in the Everglades: A Historical Perspective , 1994 .
[29] Joel D. Cline,et al. SPECTROPHOTOMETRIC DETERMINATION OF HYDROGEN SULFIDE IN NATURAL WATERS1 , 1969 .
[30] Ronald D. Jones,et al. Nutrient limitations on microbial respiration in peat soils with different total phosphorus content , 1993 .
[31] L. Stookey. Ferrozine---a new spectrophotometric reagent for iron , 1970 .
[32] T. J. Smith,et al. Changes in mass and nutrient content of wood during decomposition in a south Florida mangrove forest , 2005 .
[33] Jia-Zhong Zhang,et al. Potential availability of sedimentary phosphorus to sediment resuspension in Florida Bay , 2004 .
[34] Ronald D. Jones,et al. Phosphorus Biogeochemistry and the Impact of Phosphorus Enrichment: Why Is the Everglades so Unique? , 2001, Ecosystems.