Solubility, phytoextraction and fractionation of heavy metals as a function of chelating agents applied to soil

被引:18
作者
de Melo, Evio Eduardo Chaves [1 ]
do Nascimento, Clistenes Williams Araujo
Queiroz Santos, Ana Cristiane
机构
[1] Univ Fed Rural Pernambuco, Pos Grad Ciencia Solo, BR-52171900 Recife, PE, Brazil
[2] Univ Fed Rural Pernambuco, Pesqu9isador CNPq, Dept Agron, BR-52171900 Recife, PE, Brazil
来源
REVISTA BRASILEIRA DE CIENCIA DO SOLO | 2006年 / 30卷 / 06期
关键词
phytoremediation; synthetic chelators; organic acids; sequential extraction;
D O I
10.1590/S0100-06832006000600014
中图分类号
S15 [土壤学];
学科分类号
0903 ; 090301 ;
摘要
The low biodegradability of synthetic chelating agents used for phytoextraction poses a great environmental risk due to the potential for metal leaching. Natural chelating agents can be an alternative to synthetic chelates due to their rapid biodegrability. The study aimed to compare the performance of natural organic acids (gallic, citric, and oxalic) to synthetic chelates/acids EDTA, DTPA, and NTA for induced phytoextraction of Pb, Cu and Zn by corn (Zea mays) and velvetbean (Stizolobium aterrimum). Soil samples were contaminated to concentrations: 500 (Pb), 300 (Zn), and 200 (Cu) mg kg(-1), and cultivated for 35 days. The chelators were applied at 10 mmol kg(-1) seven days before harvest. Soil samples were submitted to chemical extraction by CaCl2 and chemical fractionation. Heavy metal concentrations in the soil solution were also determined. EDTA, DTPA, and NTA were effective at solubilizing the heavy metals. Citric acid was efficient to solubilize metals in the first 24 h after application. The metal distribution across soil fractions followed the sequence: Pb: MO > OxFeA > Tr > OxFeC, Cu: MO > Tr > OxFeC > OxFeA; and Zn: MO > Tr > OxFeC > OxFeA. In general, synthetic chelators increased the exchangeable contents of Pb and Cu and decreased Pb, Cu, and Zn contents in the amorphous and crystalline iron oxides fractions. The extractant CaCl2 0.01 mol L-1 can be used to predict Pb, Cu, and Zn concentrations in soil solution.
引用
收藏
页码:1051 / 1060
页数:10
相关论文
共 30 条
[11]   Lead phytoextraction: Species variation in lead uptake and translocation [J].
Huang, JW ;
Cunningham, SD .
NEW PHYTOLOGIST, 1996, 134 (01) :75-84
[12]   Phytoremediation of lead-contaminated soils: Role of synthetic chelates in lead phytoextraction [J].
Huang, JWW ;
Chen, JJ ;
Berti, WR ;
Cunningham, SD .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1997, 31 (03) :800-805
[13]   Phytoremediation:: novel approaches to cleaning up polluted soils [J].
Krämer, U .
CURRENT OPINION IN BIOTECHNOLOGY, 2005, 16 (02) :133-141
[14]   Effects of EDTA on solubility of cadmium, zinc, and lead and their uptake by rainbow pink and vetiver grass [J].
Lai, HY ;
Chen, ZS .
CHEMOSPHERE, 2004, 55 (03) :421-430
[15]  
Lasat M., 2000, Journal of Hazardous Substance Research, V2, P5, DOI [10.4148/1090-7025.1015, DOI 10.4148/1090-7025.1015]
[16]   Phytoremediation of heavy metal-contaminated soils: Natural hyperaccumulation versus chemically enhanced phytoextraction [J].
Lombi, E ;
Zhao, FJ ;
Dunham, SJ ;
McGrath, SP .
JOURNAL OF ENVIRONMENTAL QUALITY, 2001, 30 (06) :1919-1926
[17]   Enhanced phytoextraction of Cu, Pb, Zn and Cd with EDTA and EDDS [J].
Luo, CL ;
Shen, ZG ;
Li, XD .
CHEMOSPHERE, 2005, 59 (01) :1-11
[18]  
Martell WE, 1974, CRITICAL STABILITY C
[19]   Enhanced phytoextraction: In search of EDTA alternatives [J].
Meers, E ;
Hopgood, M ;
Lesage, E ;
Vervaeke, P ;
Tack, FMG ;
Verloo, MG .
INTERNATIONAL JOURNAL OF PHYTOREMEDIATION, 2004, 6 (02) :95-109
[20]   Remediation technologies for metal-contaminated soils and groundwater: an evaluation [J].
Mulligan, CN ;
Yong, RN ;
Gibbs, BF .
ENGINEERING GEOLOGY, 2001, 60 (1-4) :193-207