Phytoextraction of metal-contaminated soil by Sedum alfredii H:: Effects of chelator and co-planting

被引:95
作者
Wu, Q. T.
Wei, Z. B.
Ouyang, Y. [1 ]
机构
[1] Dept Water Resources, Palatka, FL USA
[2] S China Agr Univ, Coll Nat Resource & Environm, Guangzhou 510642, Peoples R China
基金
中国国家自然科学基金;
关键词
co-cropping; mixed chelators; metals; phytoremediation; S; alfredii; Zea mays;
D O I
10.1007/s11270-006-9256-1
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Phytoextraction is a promising technology that uses hyperaccumulating plants to remove inorganic contaminants, primarily heavy metals, from soils and waters. A field experiment was conducted to evaluate impacts of a mixture of chelators (MC) upon the growth and phytoextraction of heavy metals by the hyperaccumulator Sedum alfredii Hance in a co-planting system in a paddy soil that was historically irrigated with Pb and Zn contaminated mining wastewaters. The co-planting system used in this study was comprised of a Zn- and Cd-hyperaccumulator (S. alfredii) and a low-accumulating crop (Zea mays). Results showed that yields of S. alfredii were significantly increased with the addition of the MC and by co-planting with Z. mays. Our study further revealed that concentrations of Zn, Pb, and Cd in the corn grains of Z. mays conform to the Chinese hygiene standards for animal feeds and in the other parts of Z. mays conform to the Chinese organic fertilizer standards. The uptake of Zn, Cd, and Pb by S. alfredii was significantly increased with the addition of MC. The uptake of Zn by S. alfredii was also significantly enhanced by co-planting with Z. mays, but the interaction between MC and co-planting was not significant, meaning the effects of the two types of treatments should be additive. When the MC was applied to the co-planting system in the soil contaminated with Zn, Cd, and Pb, the highest phytoextraction rates were observed. This study suggested that the use of the hyperaccumulator S. alfredii and the low-accumulating crop Z. mays in the co-planting system with the addition of the MC was a more promising approach than the use of a single hyperaccumulator with the assistance of EDTA (ethylenediaminetetraacetic acid). This approach not only enhances the phytoextraction rates of the heavy metals but also simultaneously allows agricultural practices with safe feed products in the metal-contaminated soils.
引用
收藏
页码:131 / 139
页数:9
相关论文
共 30 条
[21]   Phytoremediation of heavy metal-contaminated land by trees - a review [J].
Pulford, ID ;
Watson, C .
ENVIRONMENT INTERNATIONAL, 2003, 29 (04) :529-540
[22]   PHYTOREMEDIATION - A NOVEL STRATEGY FOR THE REMOVAL OF TOXIC METALS FROM THE ENVIRONMENT USING PLANTS [J].
SALT, DE ;
BLAYLOCK, M ;
KUMAR, NPBA ;
DUSHENKOV, V ;
ENSLEY, BD ;
CHET, I ;
RASKIN, I .
BIO-TECHNOLOGY, 1995, 13 (05) :468-474
[23]  
Samake M, 2003, J ENVIRON SCI, V15, P622
[24]   Phytoextraction of cadmium with Thlaspi caerulescens [J].
Schwartz, C ;
Echevarria, G ;
Morel, JL .
PLANT AND SOIL, 2003, 249 (01) :27-35
[25]  
[孙琴 Sun Qin], 2003, [环境科学学报, Acta Scientiae Circumstantiae], V23, P818
[26]   EDTA-enhanced phytoremediation of heavy metal contaminated soil with Indian mustard and associated potential leaching risk [J].
Wu, LH ;
Luo, YM ;
Xing, XR ;
Christie, P .
AGRICULTURE ECOSYSTEMS & ENVIRONMENT, 2004, 102 (03) :307-318
[27]  
Wu QiTang, 2002, 17th World Congress of Soil Science, Bangkok, Thailand, 14-20 August 2002, P355
[28]  
WU QT, 2004, Patent No. 1513946A
[29]   Cadmium tolerance and hyperaccumulation in a new Zn-hyperaccumulating plant species (Sedum alfredii Hance) [J].
Yang, XE ;
Long, XX ;
Ye, HB ;
He, ZL ;
Calvert, DV ;
Stoffella, PJ .
PLANT AND SOIL, 2004, 259 (1-2) :181-189
[30]  
Ye HB, 2003, ACTA BOT SIN, V45, P1030