Open Access

Enhancement of tartaric acid modified washing solutions for lead decontamination of tropical soils


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[1]. S. Yuan, Z. Xi, Y. Jiang, J. Wan, C. Wu, Z. Zheng, X. Lu, Desorption of copper and cadmium from soils enhanced by organic acids, Chemos. 68 (2007) 1289-1297.10.1016/j.chemosphere.2007.01.04617349675 Search in Google Scholar

[2]. J. Wang, J. Jiang, D. Li, K. Li, S. Tian, Removal of Pb and Zn from contaminated soil by different washing methods: The influence of reagent and ultrasound, Environ. Sci. Pollut. Res. 22 (2015) 20084-91.10.1007/s11356-015-5219-726300361 Search in Google Scholar

[3]. D.H. Moon, J. Park, A. Koutsospyros, K.H. Cheong, Y. Chang, K. Back, R. Jo, J. Park, Assessment of soil washing for simultaneous removal of heavy metals and low-level petroleum hydrocarbons using various washing solutions, Environ. Earth Sci. 75 (2016) 884-892.10.1007/s12665-016-5690-6 Search in Google Scholar

[4]. Center for Disease Control and Prevention (CDC). Notes from the field: Outbreak of acute Pb poisoning among children aged ---lt---5 years-Zamfara, Nigeria. (2010). Morbidity Mortality Weekly 59 (2010) 846-847. Search in Google Scholar

[5]. M. Soleimani, M.A. Hajabbasi, M. Afyumi, S. Akbar, J.K. Jensen, P.E. Holm, O.K. Borggaard, Comparison of natural humic substances and synthetic ethylenediamineacetic acid and nitrilotriacetic acid as washing agent of heavy metal-polluted soils, J. Environ. Quality 39 (2010) 855-863.10.2134/jeq2009.029220400581 Search in Google Scholar

[6]. E.U. Etim, P.C. Onianwa, Lead contamination of soil in the vicinity of a military shooting range in Ibadan, Nigeria, Toxicol. Environ. Chem. 94 (2012) 895-905.10.1080/02772248.2012.678997 Search in Google Scholar

[7]. Z.M. Gusiatin, E. Klimiuk, Metal (Cu, Cd and Zn) removal and stabilization during multiple soil washing by saponin, Chemos. 86 (2012) 383-391.10.1016/j.chemosphere.2011.10.02722099538 Search in Google Scholar

[8]. B.I. Olu-Owolabi, P.N. Diagboya, W.C. Ebaddan, Mechanism of Pb2+ removal from aqueous solution using a nonliving moss biomass, Chemical Eng. J. 195-196 (2012) 270-275.10.1016/j.cej.2012.05.004 Search in Google Scholar

[9]. G. Zhu, Q. Guo, J. Yang, H. Zhang, R. Wei, C. Wang, M. Peters, X. Zhou, J. Yang, Washing out heavy metals from contaminated soils from an iron and steel smelting site, Frontier Environ. Sci. Eng. 9 (2015) 634-641.10.1007/s11783-014-0713-6 Search in Google Scholar

[10]. G. Dermont, M. Bergeron, G. Mercier, M. Richer-Lafleche, Soil washing for metal removal: A review of physical/chemical technologies and field applications, J. Hazard. Mater. 152 (2008) 1-31. Search in Google Scholar

[11]. D.C.W. Tsang, I.M.C. Lo, Competitive Cu and Cd sorption and transport in soils: a combined batch kinetics, column, and sequential extraction study, Environ. Sci. Tech. 40 (2006) 6655–6661. Search in Google Scholar

[12]. J.S. Yang, J.Y. Lee, K. Baek, T.S. Kwon, J. Choi, Extraction behavior of As, Pb, and Zn from mine tailings with acid and base solutions, J. Hazard. Mater. 171(2009) 443–451. Search in Google Scholar

[13]. D.H. Moon, J. Lee, M. Wazne, J. Park, Assessment of soil washing for Zn contaminated soils using various washing solutions, J. Ind. Eng. Chem. 18 (2012) 822-825.10.1016/j.jiec.2011.11.137 Search in Google Scholar

[14]. D. Voglar, D. Lestan, Pilot-scale washing of metal contaminated garden soil using EDTA, J. Hazard. Mater. 215–216 (2012) 32–39.10.1016/j.jhazmat.2012.02.02222410723 Search in Google Scholar

[15]. E.U. Etim, Batch washing of lead contaminated and spiked soils using water extracts of dried Terminalia mantaly, Panicum maximum and Eleusine indica plants, Ovidius University Ann. Chem. 30 (2019) 29-36.10.2478/auoc-2019-0006 Search in Google Scholar

[16]. S. Ehsan, S.O. Prasher, W.D. Marshall, A washing procedure to mobilize mixed contaminants from soil: Heavy metals, J. Environ. Quality 35 (2006) 2084-2091.10.2134/jeq2005.047517071877 Search in Google Scholar

[17]. Y. Li, P. Hu, J. Zhao, C. Dong, Remediation of cadmium- and lead contaminated agricultural soil by composite washing with chlorides and citric acid, Environ. Sci. Pollut. Res. 22 (2014) 5563–5571.10.1007/s11356-014-3720-z25342453 Search in Google Scholar

[18]. D. Voglar, D. Lestan, Chelant soil-washing technology for metal contaminated soil, Environ. Tech. 35 (2014) 1389-1400.10.1080/09593330.2013.86926524701937 Search in Google Scholar

[19]. C. Chen, Y. Chen, T. Xie, M.K. Wang, G. Wang, G. Removal, redistribution, and potential risk of soil Cd, Pb, and Zn after washing with various extractants, Environ. Sci. Pollut. Res. 22 (2015) 16881-16888.10.1007/s11356-015-4872-126104899 Search in Google Scholar

[20]. A.P. Schwab, D.S Zhu, M.K. Banks, Influence of organic acids on the transport of heavy metals in soil, Chemos. 72 (2008) 986–99410.1016/j.chemosphere.2008.02.04718482743 Search in Google Scholar

[21]. J. Wen, S.P. Stacey, M.J. McLaughlin, J.K. Kirby, Biodegradation of rhamno lipid, EDTA and citric acid in cadmium and zinc contaminated soils, Soil Biology Biochem. 41 (2009) 2214–2221.10.1016/j.soilbio.2009.08.006 Search in Google Scholar

[22]. Y. Chen, S. Zhang, X. Xu, P. Yao, T. Li, G. Wang, G. Gong, Y. Li, O. Deng, Effects of surfactants on low molecular weight organic acids to wash soil zinc, Environ. Sci. Pollut. Res. 23 (2016) 4629-4638.10.1007/s11356-015-5700-326527338 Search in Google Scholar

[23]. E.U. Etim, Lead removal from contaminated shooting range soil using acetic acid KCL washing solutions and electrochemical reduction, J. Health Pollut. 7 (2017) 22-31.10.5696/2156-9614-7-13.22623652630524811 Search in Google Scholar

[24]. E.U. Etim, Batch leaching of Pb-contaminated shooting range soil using citric acid-modified washing solution and electrochemical reduction, Inter. J. Environ. Sci. Tech. 16 (2019) 3013-3020.10.1007/s13762-018-1909-2 Search in Google Scholar

[25]. S. Wang, C.N. Mulligan, Effects of three low-molecular-weight organic acids (LMWOAs) and pH on the mobilization of arsenic and heavy metals (Cu, Pb, and Zn) from mine tailings, Environ. Geochem. Health. 35 (2013) 111–118.10.1007/s10653-012-9461-3 Search in Google Scholar

[26]. K.H. Tan, Degradation of soil minerals by organic acids. In: Huang, P.M. and Schnitzer, M. (Eds.). Interactions of soil minerals with natural and microbes. Soil Science Society of America. Special Publication No. 17, Madison, Wisconsin, USA. Pp: 1-27 (1986). Search in Google Scholar

[27]. S.A. Wasay, S. Barrington, S. Tokunaga, Organic acids for the in-situ remediation of soils polluted by heavy metals: Soil flushing in columns, Water, Air Soil Pollut. 127 (2000) 301-314.10.1023/A:1005251915165 Search in Google Scholar

[28]. K.E. Xin, L. Pei-Jun, Z. Qi-Xing, Z. Yun, S. Tie-Heng, Removal of heavy metals form contaminated soil using tartaric acid, J. Environ. Sci. 18 (2006) 727-733. Search in Google Scholar

[29]. R.A. Wuana, J.A. Okieimen, J.A. Imborvungu, Removal of heavy metals form a contaminated soil using organic chelating acids, Inter. J. Environ. Sci. Tech. 7 (2010) 485-496.10.1007/BF03326158 Search in Google Scholar

[30]. International Institute of Tropical Agriculture, (IITA), Selected methods for soil and plant analysis. Manual Series No. 1. IITA, Ibadan (2001). Search in Google Scholar

[31]. G.H. Bouyoucos, A recalibration of the hydrometer for making mechanical analysis of soils, Agron. J. 43 (1951) 434-438.10.2134/agronj1951.00021962004300090005x Search in Google Scholar

[32]. A. Walkley, I.A. Black, An examination of the Degtjareff method for determining soil organic matter and proposed modification of the chromic acid titration method, Soil Sci. 37 (1934) 29-38.10.1097/00010694-193401000-00003 Search in Google Scholar

[33]. H. Niskavaara, C. Reimann, V. Chekushin, G. Kashulina, Seasonal variability of total and easily leachable element contents in top soils (0-5 cm) from eight catchments in the European Arctic (Finland, Norway and Russia), Environ. Pollut. 96 (1997) 261-74.10.1016/S0269-7491(97)00031-6 Search in Google Scholar

[34]. K.R. Reddy, S. Chinthamreddy, Comparison of extractants for removing heavy metals from contaminated clayey soils, Soil Sed. Contam. 9 (2000) 449-462.10.1080/10588330091134347 Search in Google Scholar

[35]. S. Tokalioglu, S. Kartal, A. Gultekin, Investigation of heavy metal uptake by vegetables growing in contaminated soils using the modified BCR sequential extraction method, Inter. J. Environ. Analy. Chem. 85 (2006) 417-430.10.1080/03067310500352387 Search in Google Scholar

[36]. C.N. Okezie, Geological map of Nigeria. Div. Geological Survey. Lagos, Nigeria (1985). Search in Google Scholar

[37]. Z. Atafar, A.R. Mesdaghinwa, J. Nouri, M. Homaee, M. Yunesian, M. Ahmadimoghaddam, A.H. Mahvi, Effect of fertilizer application on soil heavy metal concentration, Environ. Monit. Assess. 160 (2010) 83-89.10.1007/s10661-008-0659-x19058018 Search in Google Scholar

[38]. S. Bisone, J. Blais, P. Drogui, G. Mercier, Toxic metal removal from polluted soil by acid extraction, Water, Air Soil Pollut. 223 (2012) 3739-3755.10.1007/s11270-012-1145-1 Search in Google Scholar

eISSN:
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Language:
English
Publication timeframe:
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Journal Subjects:
Chemistry, other