朱丽霞, 章家恩, 刘文高. 根系分泌物与根际微生物相互作用研究综述. 生态环境, 2003, 12(1): 102-105 Zhu L. X., Zhang J. E., Liu W. G. Review of studies on interactions between root exudates and rhizopheric microorganisms. Ecology and Environment, 2003, 12(1): 102-105 (in Chinese)
[2]
Makos J. D., Hrncir D.C. Chemistry of Cr(VI) in a constructed wetland. Environmental Science & Technology, 1995, 29(9): 2414-2419
[3]
孙和和. 人工湿地处理电镀废水的净化效果与应用研究. 杭州: 浙江师范大学硕士学位论文, 2008 Sun H. H. Study on removal efficiency and application of constructed wetland for electroplate wastewater. Hangzhou: Master Dissertation of Zhejiang Normal University, 2008 (in Chinese)
[4]
冯培勇, 陈兆平, 靖元孝. 人工湿地及其去污机理研究进展. 生态科学, 2002, 21(3): 264-268 Feng P. Y., Chen Z. P., Jing Y. X. Review on constructed wetland and its mechanisms of wastewater treatment. Ecologic Science, 2002, 21(3): 264-268 (in Chinese)
[5]
Murray-Gulde C. L., Bearr J., Rodgers J. H. Evaluation of a constructed wetland treatment system specifically designed to decrease bioavailable copper in a wastestream. Ecotoxicology and Environmental Safety, 2005, 61(1): 60-73
[6]
Yadav A. K., Kumar N., Sreekrishnan T. R., et al. Removal of chromium and nickel from aqueous solution in constructed wetland: Mass balance, adsorption-desorption and FTIR study. Chemical Engineering Journal, 2010, 160(1): 122-128
[7]
Fibbi D., Doumett S., Colzi I. Total and hexavalent chromium removal in a subsurface horizontal flow (h-SSF) constructed wetland operating as post-treatment of textile wastewater for water reuse. Water Science and Technology, 2011, 64(4): 826-836
[8]
Broadwaya A., Caveb M. R., Wraggb J., et al. Determination of the bioaccessibility of chromium in Glasgow soil and the implications for human health risk assessment. Science of the Total Environment, 2010, 409(2): 267-277
[9]
马前, 张小龙. 国内外重金属废水处理新技术的研究进展. 环境工程学报, 2007, 1(7): 10-14 Ma Q., Zhang X. L. Advances in new technology for heavy metal wastewater treatment at home and abroad. Chinese Journal of Environmental Engineering, 2007, 1(7): 10-14 (in Chinese)
[10]
Babatunde A. O., Zhao Y. Q., O\'neill M., et al. Constructed wetlands for environmental pollution control: A review of developments, research and practice in Ireland. Environment International, 2008, 34(1): 116-126
[11]
Mustafa A., Scholz M., Harrington R., et al. Long-term performance of a representative integrated constructed wetland treating farmyard runoff. Ecological Engineering, 2009, 35(5): 779-790
[12]
Khan S., Ahmad I., Shah M. T., et al. Use of constructed wetland for the removal of heavy metals from industrial wastewater. Journal of Environmental Management, 2009, 90(11): 3451-3457
[13]
Spokas L. A., Veneman P. L., Simkins S. C., et al. Performance evaluation of a constructed wetland treating high-ammonium primary domestic wastewater effluent. Water Environment Research, 2010, 82(7): 592-600
[14]
张学洪, 罗亚平, 黄海涛, 等. 一种新发现的湿生铬超积累植物——李氏禾(Leersia hexandra Swartz). 生态学报, 2006, 26(3): 950-953 Zhang X. H., Luo Y. P., Huang H. T., et al. Leersia hexandra Swartz: A newly discovered hygrophyte with chromium hyperaccumulator properties. Acta Ecologica Sinica, 2006, 26(3): 950-953 (in Chinese)
[15]
Liu J., Duan C. Q., Zhang X. H., et al. Potential of Leersia hexandra Swartz for phytoextraction of Cr from soil. Journal of Hazardous Materials, 2011, 188(1-3):85-91
[16]
国家环境保护总局. 水和废水监测分析方法(第4版). 北京: 中国环境科学出版社, 2002
[17]
国家环境保护总局.水质总铬的测定GB7466-87. 1987 Ministry of Environmental Protection of People\'s Republic of China (MEP). Water quality-Determination of total chromium GB7466-87. 1987 (in Chinese)
[18]
Zhang X. H., Liu J., Huang H. T., et al. Chromium accumulation by the hyperaccumulator plant Leersia hexandra Swartz. Chemosphere, 2007, 67(6): 1138-1143
[19]
Zhang C. B., Wang J., Liu W. L., et al. Effects of plant diversity on microbial biomass and community metabolic profiles in a full-scale constructed wetland. Ecological Engineering, 2010, 36(1): 62-68