Phosphorus adsorption and desorption behavior on sediments of different origins

被引:108
作者
Wang, Qingren [1 ]
Li, Yuncong
机构
[1] Univ Florida, Trop Res & Educ Ctr, Homestead, FL 33031 USA
关键词
Adsorption; Desorption; Isotherm; Phosphorus; Retention; Sediment; PARTICLE-BOUND PHOSPHORUS; SOLID-PHASE PHOSPHORUS; PHOSPHATE ADSORPTION; LAKE-SEDIMENTS; WATER; SORPTION; RELEASE; ACCUMULATION; RETENTION; GRADIENT;
D O I
10.1007/s11368-010-0211-9
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Purpose The aim of this study was to assess phosphorus-retention (P-ret) capacities via P adsorption (P-ads) and desorption (P-des) by sediments collected from six different sources associated with various origins, physical, and chemical characteristics. Materials and methods Sediment samples were collected in the State of Florida, the USA, from estuary, marine, wetland, canal, river, and lake, respectively. Phosphorus adsorption and desorption for each sediment were evaluated in three types of ambient water, i.e., marine, wetland, and canal, with different rates of phosphate added and then desorbed by chloride (Cl-). Capacities in adsorption and desorption of P by various sediments were evaluated with different isotherm models to compare their potentials and stabilities in P retention. Results and discussion Sediments from the canal and lake had the greatest native adsorbed P and the highest zero equilibrium P concentration. Sediment from the estuary had the highest P adsorption and followed by those from wetland and marine origins, respectively. Phosphorus desorption from sediments by replacing exchangeable P with Cl- (20 mmol L-1 KCl) was obtained from an excellent fit of the data by an exponential growth model of desorption kinetics. The fractions of retained P (P-ret = P-ads -aEuro parts per thousand P-des) were as high as 85-98% in the studied sediments, which displayed strong P retention capacities by all these sediments. Conclusions High capacities to retain P by sediments from estuary and wetland may play a critical role in buffering some chemical and ecological changes and benefit aquatic eco-environments by preventing P rapid release to the overlying water column.
引用
收藏
页码:1159 / 1173
页数:15
相关论文
共 67 条
[1]  
[Anonymous], 2004, STAT US GUID
[2]  
Beutel Marc W., 1999, Lake and Reservoir Management, V15, P285
[3]  
Loeppert R. H., 1996, Methods of soil analysis. Part 3 - chemical methods., P639
[4]   SULFATE CONTROL OF PHOSPHORUS AVAILABILITY IN LAKES - A TEST AND REEVALUATION OF HASLER AND EINSELE MODEL [J].
CARACO, NF ;
COLE, JJ ;
LIKENS, GE .
HYDROBIOLOGIA, 1993, 253 (1-3) :275-280
[5]   TRANSFORMATION OF PARTICLE-BOUND PHOSPHORUS AT THE LAND SEA INTERFACE [J].
CONLEY, DJ ;
SMITH, WM ;
CORNWELL, JC ;
FISHER, TR .
ESTUARINE COASTAL AND SHELF SCIENCE, 1995, 40 (02) :161-176
[6]   PEAT ACCRETION AND PHOSPHORUS ACCUMULATION ALONG A EUTROPHICATION GRADIENT IN THE NORTHERN EVERGLADES [J].
CRAFT, CB ;
RICHARDSON, CJ .
BIOGEOCHEMISTRY, 1993, 22 (02) :133-156
[7]   CHEMISTRY OF ORTHO-PHOSPHATE UPTAKE FROM SEAWATER ON TO CALCITE AND ARAGONITE [J].
DEKANEL, J ;
MORSE, JW .
GEOCHIMICA ET COSMOCHIMICA ACTA, 1978, 42 (09) :1335-1340
[8]   Sediment inventory and phosphorus fractions for water conservation area canals in the everglades [J].
Diaz, OA ;
Daroub, SH ;
Stuck, JD ;
Clark, MW ;
Lang, TA ;
Reddy, KR .
SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 2006, 70 (03) :863-871
[9]  
Fisher M.M., 1992, Journal of Paleolimnology, V7, P157, DOI DOI 10.1007/BF00196870