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Enhanced Phytoextraction of Heavy Metals from Contaminated Soil by Plant Co-cropping Associated with PGPR
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  • 作者:Zhi-feng Liu ; Hong-guang Ge ; Chen Li ; Zuo-ping Zhao…
  • 关键词:Plant growth ; promoting rhizobacteria ; Sedum alfredii ; Alfalfa ; Consecutive harvest
  • 刊名:Water, Air, and Soil Pollution
  • 出版年:2015
  • 出版时间:March 2015
  • 年:2015
  • 卷:226
  • 期:3
  • 全文大小:350 KB
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    8. Hamdi, H, Benzarti, S, Aoyama, I, Jedidi, N (2012) Rehabilitation of degraded soils containing aged PAHs based on phytoremediation with alfalfa (Medicago sativa L.). International Biodeterioration & Biodegradation 67: pp. 40-47 CrossRef
    9. Hrynkiewicz, K, Baum, C (2013) Selection of ectomycorrhizal willow genotype in phytoextraction of heavy metals. Environmental Technology 34: pp. 225-230 CrossRef
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    11. Lu, M, Zhang, ZZ (2014) Phytoremediation of soil co-contaminated with heavy metals and deca-BDE by co-planting of Sedum alfredii with tall fescue associated with Bacillus cereus JP12. Plant and Soil 382: pp. 89-102 CrossRef
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    15. Ma, Y, Rajkumar, M, Luo, Y, Freitas, H (2013) Phytoextraction of heavy metal polluted soils using Sedum plumbizincicola inoculated with metal mobilizing Phyllobacterium myrsinacearum RC6b. Chemosphere 93: pp. 1386-1392 CrossRef
    16. Martínez-Alcalá, I, Clemente, R, Bernal
  • 刊物类别:Earth and Environmental Science
  • 刊物主题:Environment
    Environment
    Atmospheric Protection, Air Quality Control and Air Pollution
    Waste Water Technology, Water Pollution Control, Water Management and Aquatic Pollution
    Terrestrial Pollution
    Hydrogeology
  • 出版者:Springer Netherlands
  • ISSN:1573-2932
文摘
In this study, 1-year greenhouse pot experiments were conducted to investigate the effect of Phyllobacterium myrsinacearum strain RC6b on the growth and phytoextraction efficiency of heavy metals by a Zn/Cd hyperaccumulator (Sedum alfredii) and alfalfa (Medicago sativa L.) in a co-cropping system. The treated soil sample was collected from a land reclamation site of Pb/Zn mine tailings in Hanzhong City, Shaanxi Province, China. Results showed that, with the inoculation of RC6b, shoot biomass yields of plants were significantly increased by 15.9-0.2?% and 17.2-9.9?% for alfalfa and S. alfredii, respectively, compared to the non-inoculated plants. Biomass yield of alfalfa was higher than that of S. alfredii. RC6b inoculation increased metal concentrations by 18.6-1.2?% (Pb), 23.8-7.5?% (Cd), and 26.4-8.3?% (Zn) in S. alfredii shoots, and by 13.8-4.7?% (Pb), 15.8-6.6?% (Cd), and 24.8-5.6?% (Zn) in alfalfa shoots, respectively. After six consecutive harvests of shoots, RC6b inoculation increased the phytoextraction efficiencies of Pb, Cd, and Zn by shoots of the co-planting system by 16.9, 46.3, and 60.9?%, respectively. Nevertheless, phytoextraction of Cu was not improved by RC6b inoculation. In the co-planting/inoculation system, the percentage removals of metals from soil by the plant shoots were 6.09, 30.97, 11.10, and 1.68?% for Pb, Cd, Zn, and Cu, respectively, after six harvests of shoots. Inoculation with RC6b significantly increased the soil microbial activity and the carbon utilization ability of the soil microbial community.

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