Transport and fate of Cu and Cd in contaminated paddy soil under acid mine drainage.
暂无分享,去创建一个
Z. Dang | Yan Pan | G. Lu | Tengfei Ma | Chengfang Yang | Han Ye | Xiaofei Li | Yang Yang
[1] Z. Dang,et al. Spatial and temporal variations of metal fractions in paddy soil flooding with acid mine drainage. , 2022, Environmental research.
[2] Z. Dang,et al. Spatial and temporal variations of Cu and Cd mobility and their controlling factors in pore water of contaminated paddy soil under acid mine drainage: A laboratory column study. , 2021, The Science of the total environment.
[3] Z. Dang,et al. Spatial distribution characteristics of the microbial community and multi-phase distribution of toxic metals in the geochemical gradients caused by acid mine drainage, South China , 2021, Science of The Total Environment.
[4] Z. Dang,et al. Mechanisms of Cr(VI) adsorption on schwertmannite under environmental disturbance: Changes in surface complex structures. , 2021, Journal of hazardous materials.
[5] Z. Dang,et al. Mobilization of arsenic during reductive dissolution of As(V)-bearing jarosite by a sulfate reducing bacterium. , 2021, Journal of hazardous materials.
[6] Z. Dang,et al. Soil rehabilitation shaped different patterns of bacterial and archaeal community in AMD-irrigated paddy soil. , 2021, Chemosphere.
[7] T. Yasutaka,et al. Comparison of the impacts of the experimental parameters and soil properties on the prediction of the soil sorption of Cd and Pb , 2020 .
[8] A. Western,et al. Sorption and transport behavior of zinc in the soil; Implications for stormwater management , 2020 .
[9] Z. Dang,et al. Migration and fate of metallic elements in a waste mud impoundment and affected river downstream: A case study in Dabaoshan Mine, South China. , 2018, Ecotoxicology and environmental safety.
[10] Jiyan Shi,et al. Does sulfur fertilizer influence Cu migration and transformation in colloids of soil pore water from the rice (Oryza sativa L.) rhizosphere? , 2018, Environmental pollution.
[11] V. Ettler,et al. Revisiting models of Cd, Cu, Pb and Zn adsorption onto Fe(III) oxides , 2018, Chemical Geology.
[12] Zhenqing Shi,et al. Predicting Heavy Metal Partition Equilibrium in Soils: Roles of Soil Components and Binding Sites , 2018 .
[13] Yingying Xie,et al. Mineralogical characteristics of sediments and heavy metal mobilization along a river watershed affected by acid mine drainage , 2018, PloS one.
[14] M. Jalali,et al. Sorption and desorption of potentially toxic metals (Cd, Cu, Ni and Zn) by soil amended with bentonite, calcite and zeolite as a function of pH , 2017 .
[15] T. Makino,et al. Optimal Soil Eh, pH, and Water Management for Simultaneously Minimizing Arsenic and Cadmium Concentrations in Rice Grains. , 2016, Environmental science & technology.
[16] B. Daus,et al. A sequential extraction procedure to evaluate the mobilization behavior of rare earth elements in soils and tailings materials. , 2016, Chemosphere.
[17] I. Burke,et al. Role of an organic carbon-rich soil and Fe(III) reduction in reducing the toxicity and environmental mobility of chromium(VI) at a COPR disposal site. , 2016, The Science of the total environment.
[18] A. Stams,et al. Sulfate reduction at low pH to remediate acid mine drainage. , 2014, Journal of hazardous materials.
[19] Q. Hu,et al. Concentrations and health risks of lead, cadmium, arsenic, and mercury in rice and edible mushrooms in China. , 2014, Food chemistry.
[20] M. Soylak,et al. Investigation of heavy metal mobility and availability by the BCR sequential extraction procedure: relationship between soil properties and heavy metals availability , 2014 .
[21] L. Figueroa,et al. Zinc and nickel removal in limestone based treatment of acid mine drainage: The relative role of adsorption and co-precipitation , 2013 .
[22] K. Osathaphan,et al. Competitive modeling of sorption and transport of Pb2 +, Ni2 +, Mn2 + AND Zn2 + under binary and multi-metal systems in lateritic soil columns , 2012 .
[23] L. Beesley,et al. Field sampling of soil pore water to evaluate trace element mobility and associated environmental risk. , 2011, Environmental pollution.
[24] K. Osathaphan,et al. Competitive sorption and transport of Pb2+, Ni2+, Mn2+, and Zn2+ in lateritic soil columns. , 2011, Journal of hazardous materials.
[25] De-ming Dong,et al. Investigation of the transport and fate of Pb, Cd, Cr(VI) and As(V) in soil zones derived from moderately contaminated farmland in Northeast, China. , 2009, Journal of hazardous materials.
[26] Joachim Ingwersen,et al. Estimation of heavy metal sorption in German soils using artificial neural networks , 2009 .
[27] W. Bowman,et al. Negative impact of nitrogen deposition on soil buffering capacity , 2008 .
[28] J. R. Quintana,et al. Mobility of heavy metals in poorly developed carbonate soils in the Mediterranean region , 2008 .
[29] R. A. Kleiv,et al. Predicting the neutralisation of acid mine drainage in anoxic olivine drains , 2008 .
[30] S. Musić,et al. Mössbauer, FT-IR and FE SEM investigation of iron oxides precipitated from FeSO4 solutions , 2007 .
[31] Daniel C W Tsang,et al. Competitive Cu and Cd sorption and transport in soils: a combined batch kinetics, column, and sequential extraction study. , 2006, Environmental science & technology.
[32] K. Adebowale,et al. The effect of some operating variables on the adsorption of lead and cadmium ions on kaolinite clay. , 2006, Journal of hazardous materials.
[33] H. Fu,et al. Complexes of fulvic acid on the surface of hematite, goethite, and akaganeite: FTIR observation. , 2006, Chemosphere.
[34] Ming-kuang Wang,et al. Transport of cadmium, nickel, and zinc in Taoyuan red soil using one-dimensional convective–dispersive model , 2006 .
[35] Xiaoguang Meng,et al. Lead leachability in stabilized/solidified soil samples evaluated with different leaching tests. , 2004, Journal of hazardous materials.
[36] G. Parkinson,et al. Arsenic removal from aqueous solution via ferrihydrite crystallization control. , 2004, Environmental science & technology.
[37] J. M. Rodríguez-Maroto,et al. Competitive Retention of Lead and Cadmium on an Agricultural Soil , 2003, Environmental monitoring and assessment.
[38] J. Burger,et al. Methodologies for assessing exposure to metals: speciation, bioavailability of metals, and ecological host factors. , 2003, Ecotoxicology and environmental safety.
[39] P. C. Gomes,et al. Simultaneous competitive adsorption of heavy metals by the mineral matrix of tropical soils , 2003 .
[40] L. Deschen̂es,et al. Partitioning and speciation of chromium, copper, and arsenic in CCA-contaminated soils: influence of soil composition. , 2001, The Science of the total environment.
[41] M. Fontes,et al. Selectivity Sequence and Competitive Adsorption of Heavy Metals by Brazilian Soils , 2001 .
[42] R. Yong,et al. Partitioning of heavy metals on soil samples from column tests , 2001 .
[43] R. Naidu,et al. AN ASSESSMENT OF ENVIRONMENTAL AND SOLUTION PARAMETER IMPACT ON TRACE-METAL SORPTION BY SOILS , 2001 .
[44] David G. Kinniburgh,et al. ION BINDING TO NATURAL ORGANIC MATTER : COMPETITION, HETEROGENEITY, STOICHIOMETRY AND THERMODYNAMIC CONSISTENCY , 1999 .
[45] G. Gillman,et al. Modification to the compulsive exchange method for measuring exchange characteristics of soils , 1986 .
[46] Y. Yoon,et al. Application of gas adsorption kinetics--II. A theoretical model for respirator cartridge service life and its practical applications. , 1984, American Industrial Hygiene Association journal.
[47] A. Tessier,et al. Sequential extraction procedure for the speciation of particulate trace metals , 1979 .
[48] A. Walkley,et al. AN EXAMINATION OF THE DEGTJAREFF METHOD FOR DETERMINING SOIL ORGANIC MATTER, AND A PROPOSED MODIFICATION OF THE CHROMIC ACID TITRATION METHOD , 1934 .
[49] G. Koopmans,et al. Solubility of trace metals in two contaminated paddy soils exposed to alternating flooding and drainage , 2016 .
[50] Fangbai Li,et al. Iron Redox Cycling Coupled to Transformation and Immobilization of Heavy Metals: Implications for Paddy Rice Safety in the Red Soil of South China , 2016 .
[51] L. Beesley,et al. Mobility of arsenic, cadmium and zinc in a multi-element contaminated soil profile assessed by in-situ soil pore water sampling, column leaching and sequential extraction. , 2010, Environmental pollution.
[52] A. P. Schwab,et al. Leaching and reduction of chromium in soil as affected by soil organic content and plants. , 2006, Chemosphere.
[53] M. Benedetti. Metal ion binding to colloids from database to field systems , 2006 .