Controls on accumulation and soil solution partitioning of heavy metals across upland sites in United Kingdom (UK).
暂无分享,去创建一个
M. Ashmore | Muhammad Nauman Ahmad | M. Riaz | D. Zia | Afia Zia | L. V. D. van den Berg | Dania Zia | Muhammad Riaz | M. Ahmad
[1] F. Coulon,et al. Assessing bioavailability of complex chemical mixtures in contaminated soils: Progress made and research needs. , 2018, The Science of the total environment.
[2] B. Robinson,et al. Trace metal mobilization by organic soil amendments: insights gained from analyses of solid and solution phase complexation of cadmium, nickel and zinc. , 2018, Chemosphere.
[3] M. Benedetti,et al. Zinc and copper behaviour at the soil-river interface: New insights by Zn and Cu isotopes in the organic-rich Rio Negro basin , 2017 .
[4] P. Lens,et al. Metal mobilization from metallurgical wastes by soil organic acids. , 2017, Chemosphere.
[5] N. Bolan,et al. Impact of wastewater derived dissolved organic carbon on reduction, mobility, and bioavailability of As(V) and Cr(VI) in contaminated soils. , 2017, Journal of environmental management.
[6] M. Benedetti,et al. Influence of dissolved organic matter and manganese oxides on metal speciation in soil solution: A modelling approach. , 2016, Environmental pollution.
[7] S. Lofts,et al. Critical Loads and Critical Limits of Cadmium, Copper, Lead and Zinc and Their Exceedances for Terrestrial Ecosystems in the United Kingdom , 2015 .
[8] G. Owens,et al. Bioavailability of heavy metals in soils: definitions and practical implementation—a critical review , 2015, Environmental Geochemistry and Health.
[9] A. Straathof,et al. Effect of dissolved organic matter composition on metal speciation in soil solutions , 2015 .
[10] R. Meissner,et al. Temporal dynamics of pore water concentrations of Cd, Co, Cu, Ni, and Zn and their controlling factors in a contaminated floodplain soil assessed by undisturbed groundwater lysimeters. , 2014, Environmental pollution.
[11] Ana María Luna Moliner,et al. Soluble organic carbon and pH of organic amendments affect metal mobility and chemical speciation in mine soils. , 2014, Chemosphere.
[12] B. Pan,et al. Distribution and speciation of metals (Cu, Zn, Cd, and Pb) in agricultural and non-agricultural soils near a stream upriver from the Pearl River, China. , 2013, Environmental pollution.
[13] M. Ashmore,et al. Dissolved organic carbon (DOC) concentrations in UK soils and the influence of soil, vegetation type and seasonality. , 2012, The Science of the total environment.
[14] S. Watmough,et al. An Assessment of Long-term Risks of Metals in Sudbury: A Critical Loads Approach , 2012, Water, Air, & Soil Pollution.
[15] Jaewoo Chung,et al. Role of organic amendments on enhanced bioremediation of heavy metal(loid) contaminated soils. , 2011, Journal of hazardous materials.
[16] V. Cala,et al. Chemical characterization and evaluation of composts as organic amendments for immobilizing cadmium. , 2010, Bioresource technology.
[17] L. Beesley,et al. Effects of biochar and greenwaste compost amendments on mobility, bioavailability and toxicity of inorganic and organic contaminants in a multi-element polluted soil. , 2010, Environmental pollution.
[18] Emily R. Unsworth,et al. Relationship between metal speciation in soil solution and metal adsorption at the root surface of ryegrass. , 2008, Journal of environmental quality.
[19] I. Thornton,et al. Bioavailability of trace metals in brownfield soils in an urban area in the UK , 2008, Environmental geochemistry and health.
[20] R. Wadsworth,et al. The Applicability of National Critical Loads Data in Assessing Designated Sites , 2007 .
[21] S. Findlay. Increased carbon transport in the Hudson River: unexpected consequence of nitrogen deposition? , 2005 .
[22] H. Bradl. Adsorption of heavy metal ions on soils and soils constituents. , 2004, Journal of colloid and interface science.
[23] I Thornton,et al. The solid-solution partitioning of heavy metals (Cu, Zn, Cd, Pb) in upland soils of England and Wales. , 2003, Environmental pollution.
[24] G. Paton,et al. Predicting the activity of Cd2+ and Zn2+ in soil pore water from the radio-labile metal fraction , 2003 .
[25] A. Lawlor,et al. Metals in bulk deposition and surface waters at two upland locations in northern England. , 2003, Environmental pollution.
[26] E. Tipping,et al. Cation binding by humic substances: Cation–humic binding and other physico-chemical processes , 2002 .
[27] B. J. Alloway,et al. The role of dissolved organic carbon in the mobility of Cd, Ni and Zn in sewage sludge-amended soils. , 2002, Environmental pollution.
[28] B. Bergkvist. Changing of Lead and Cadmium Pools of Swedish Forest Soils , 2001 .
[29] D. Kinniburgh,et al. Generic NICA-Donnan model parameters for metal-ion binding by humic substances. , 2001, Environmental science & technology.
[30] Chris Freeman,et al. An enzymic 'latch' on a global carbon store , 2001, Nature.
[31] Herbert E. Allen,et al. Solid-Solution Partitioning of Metals in Contaminated Soils: Dependence on pH, Total Metal Burden, and Organic Matter , 2000 .
[32] David L. Jones. Organic acids in the rhizosphere – a critical review , 1998, Plant and Soil.
[33] S. McGrath,et al. Heavy metal uptake and chemical changes in the rhizosphere of Thlaspi caerulescens and Thlaspi ochroleucum grown in contaminated soils , 1997, Plant and Soil.
[34] K. J. Reddy,et al. Solubility and mobility of copper, zinc and lead in acidic environments , 1995, Plant and Soil.
[35] Alan J. M. Baker,et al. Phytoremediation Potential of Thlaspi caerulescens and Bladder Campion for Zinc‐ and Cadmium‐Contaminated Soil , 1994 .
[36] E. Tipping,et al. A unifying model of cation binding by humic substances , 1992 .
[37] J. McCarthy,et al. Mechanisms of dissolved organic carbon adsorption on soil , 1989 .
[38] S. Higashida,et al. Relations between soil microbial activity and soil properties in grassland , 1986 .
[39] A. S. Baker,et al. EFFECTS OF SOIL TYPE, LIMING, AND SLUDGE APPLICATION ON ZINC AND CADMIUM AVAILABILITY TO SWISS CHARD1 , 1985 .
[40] T. Florence. The speciation of trace elements in waters. , 1982, Talanta.
[41] R. Mortimer,et al. Evaluating water quality and ecotoxicology assessment techniques using data from a lead and zinc effected upland limestone catchment. , 2018, Water research.
[42] W. Vries,et al. Assessing the Impacts of Nitrogen Deposition on Plant Species Richness in Europe , 2015 .
[43] R. Bobbink,et al. Effects and Empirical Critical Loads of Nitrogen for Europe , 2015 .
[44] W. Vries,et al. Mass Balance Approaches to Assess Critical Loads and Target Loads of Metals for Terrestrial and Aquatic Ecosystems , 2015 .
[45] W. Vries,et al. The history and current state of critical loads and dynamic modelling assessments , 2015 .
[46] Minori Uchimiya. Changes in Nutrient Content and Availability During the Slow Pyrolysis of Animal Wastes , 2014 .
[47] Guoping Zhang,et al. The influence of pH and organic matter content in paddy soil on heavy metal availability and their uptake by rice plants. , 2011, Environmental pollution.
[48] Thomas F. Guetzloff,et al. INVESTIGATIONS OF HUMIC MATERIALS AGGREGATION WITH SCATTERING METHODS , 2000 .
[49] K. Giller,et al. Determination of chemical availability of cadmium and zinc in soils using inert soil moisture samplers. , 1998, Environmental pollution.
[50] T. Pačes. Critical Loads of Trace Metals in Soils: a Method of Calculation , 1998 .
[51] J. McCarthy,et al. Adsorption and desorption of natural organic matter on iron oxide: mechanisms and models. , 1994, Environmental science & technology.
[52] R. B. Sinha,et al. Micronutrient status in Aquic Ustifluvents and Udifluvents as related to certain soil properties , 1993 .
[53] W. Lindsay. Chemical equilibria in soils , 1979 .