Bioaccumulation of copper, lead, and zinc in six macrophyte species grown in simulated stormwater bioretention systems

被引:33
作者
Rycewicz-Borecki, Malgorzata [1 ]
McLean, Joan E. [1 ]
Dupont, R. Ryan [1 ]
机构
[1] Utah State Univ, Utah Water Res Lab, Dept Civil & Environm Engn, Logan, UT 84322 USA
基金
美国国家科学基金会;
关键词
Stormwater BMP; Bioretention; Vegetation; Metal bioaccumulation; Greenhouse; WATER-QUALITY IMPROVEMENT; CONSTRUCTED WETLANDS; HEAVY-METALS; REMOVAL; PLANTS; PHYTOREMEDIATION; ACCUMULATION; NITROGEN; PHYTOEXTRACTION; PHOSPHORUS;
D O I
10.1016/j.jenvman.2015.10.019
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Stormwater bioretention (BR) systems collect runoff containing heavy metals, which can concentrate in soil environments and potentially leach into groundwater. This greenhouse experiment evaluated differences among six plant species undergoing three varying hydraulic and pollutant loads in their bio-accumulation potential when subjected to continual application of low metal concentrations as a means of preventing copper, lead, and zinc accumulation in the BR soil. Results show that >92% of metal mass applied to the treatments via synthetic stormwater was removed from the exfiltrate within 27 cm of soil depth. Compacted soil conditions of unplanted controls retained significantly more Cu, Pb, and Zn than Carex praegracilis, and Carex microptera treatments. Differences in above and below ground plant tissue concentrations differed among species, resulting in significant differences in mass accumulation. In the above ground tissue, from highest to lowest, Phragmites australis accumulated 8 times more Cu than Scirpus acutus, and C. microptera accumulated 18 times more Pb, and 6 times more Zn than Scirpus validus. These results, and differences among species in mass distribution of the metals recovered at the end of the study, reveal various metal accumulation mechanisms. (C) 2015 Elsevier Ltd. All rights reserved.
引用
收藏
页码:267 / 275
页数:9
相关论文
共 56 条
[21]  
Jones J.B., 1990, SOIL TESTING PLANT A
[22]   Role of plants, mycorrhizae and phytochelators in heavy metal contaminated land remediation [J].
Khan, AG ;
Kuek, C ;
Chaudhry, TM ;
Khoo, CS ;
Hayes, WJ .
CHEMOSPHERE, 2000, 41 (1-2) :197-207
[23]   Transition metal transport [J].
Kraemer, Ute ;
Talke, Ina N. ;
Hanikenne, Marc .
FEBS LETTERS, 2007, 581 (12) :2263-2272
[24]   Performances of Two Macrophytes Species in Floating Treatment Wetlands for Cadmium, Nickel, and Zinc Removal from Urban Stormwater Runoff [J].
Ladislas, S. ;
Gerente, C. ;
Chazarenc, F. ;
Brisson, J. ;
Andres, Y. .
WATER AIR AND SOIL POLLUTION, 2013, 224 (02)
[25]   Comparing Bioretention Designs With and Without an Internal Water Storage Layer for Treating Highway Runoff [J].
Li, Ming-Han ;
Swapp, Mark ;
Kim, Myung Hee ;
Chu, Kung-Hui ;
Sung, Chan Yong .
WATER ENVIRONMENT RESEARCH, 2014, 86 (05) :387-397
[26]  
Lipps W C., 2018, Standard Methods Committee of the American Public Health Association, American Water Works Association, DOI [DOI 10.2105/SMWW.2882.023, 10.2105/SMWW.2882.023]
[27]   Accumulation of Cd, Pb and Zn by 19 wetland plant species in constructed wetland [J].
Liu, Jianguo ;
Dong, Yuan ;
Xu, Hai ;
Wang, Deke ;
Xu, Jiakuan .
JOURNAL OF HAZARDOUS MATERIALS, 2007, 147 (03) :947-953
[28]   Aluminium tolerance in plants and the complexing role of organic acids [J].
Ma, JF ;
Ryan, PR ;
Delhaize, E .
TRENDS IN PLANT SCIENCE, 2001, 6 (06) :273-278
[29]   Accumulation and distribution of heavy metals in the grey mangrove, Avicennia marina (Forsk.)Vierh.:: biological indication potential [J].
MacFarlane, GR ;
Pulkownik, A ;
Burchett, MD .
ENVIRONMENTAL POLLUTION, 2003, 123 (01) :139-151
[30]   Metal and metalloid removal in constructed wetlands, with emphasis on the importance of plants and standardized measurements: A review [J].
Marchand, L. ;
Mench, M. ;
Jacob, D. L. ;
Otte, M. L. .
ENVIRONMENTAL POLLUTION, 2010, 158 (12) :3447-3461