Immobilization of Pb, Cd, and Zn in a contaminated soil using eggshell and banana stem amendments: metal leachability and a sequential extraction study

被引:0
作者
Mehrnaz Ashrafi
Sharifah Mohamad
Ismail Yusoff
Fauziah Shahul Hamid
机构
[1] University of Malaya,Institute of Biological Sciences, Faculty of Science
[2] University of Malaya,Department of Chemistry, Faculty of Science
[3] University of Malaya,Department of Geology, Faculty of Science
来源
Environmental Science and Pollution Research | 2015年 / 22卷
关键词
Eggshell; Banana Stem; Heavy metals; Immobilization; Metal leaching; Sequential extraction;
D O I
暂无
中图分类号
学科分类号
摘要
Heavy-metal-contaminated soil is one of the major environmental pollution issues all over the world. In this study, two low-cost amendments, inorganic eggshell and organic banana stem, were applied to slightly alkaline soil for the purpose of in situ immobilization of Pb, Cd, and Zn. The artificially metal-contaminated soil was treated with 5 % eggshell or 10 % banana stem. To simulate the rainfall conditions, a metal leaching experiment for a period of 12 weeks was designed, and the total concentrations of the metals in the leachates were determined every 2 weeks. The results from the metal leaching analysis revealed that eggshell amendment generally reduced the concentrations of Pb, Cd, and Zn in the leachates, whereas banana stem amendment was effective only on the reduction of Cd concentration in the leachates. A sequential extraction analysis was carried out at the end of the experiment to find out the speciation of the heavy metals in the amended soils. Eggshell amendment notably decreased mobility of Pb, Cd, and Zn in the soil by transforming their readily available forms to less accessible fractions. Banana stem amendment also reduced exchangeable form of Cd and increased its residual form in the soil.
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页码:223 / 230
页数:7
相关论文
共 125 条
[1]  
Ahmad M(2012)Immobilization of lead in a Korean military shooting range soil using eggshell waste: an integrated mechanistic approach J Hazard Mater 209 392-401
[2]  
Hashimoto Y(2007)Preparation of a cation exchanger containing carboxyl groups from banana stalk and its utilization as chelating agent Infomusa 16 7-11
[3]  
Moon DH(2000)Chemical methods and phytoremediation of soil contaminated with heavy metals Chemosphere 41 229-234
[4]  
Lee SS(2008)Immobilisation of soil toxic metals by repeated additions of Fe(II) sulphate solution Geoderma 147 133-140
[5]  
Ok YS(2008)Changes in metal speciation and pH in olive processing waste and sulphur-treated contaminated soil Ecotoxicol Environ Saf 70 207-215
[6]  
Anirudhan T(2011)Impact of fresh and composted solid olive husk and their water-soluble fractions on soil heavy metal fractionation; microbial biomass and plant uptake J Hazard Mater 186 1283-1289
[7]  
Shibi I(2008)Heavy metal distribution between contaminated soil and Paulownia tomentosa, in a pilot-scale assisted phytoremediation study: influence of different complexing agents Chemosphere 72 1481-1490
[8]  
Chen H(2010)Migration of heavy metals in soil as influenced by compost amendments Environ Pollut 158 55-64
[9]  
Zheng C(2007)Immobilization of heavy metals in soil using natural and waste materials for vegetation establishment on contaminated sites Soil Sediment Contam 16 233-251
[10]  
Tu C(2006)Availability and assessment of fixing additives for the in situ remediation of heavy metal contaminated soils: a review Environ Monit Assess 116 513-528