期刊文献+

Heavy metal (Pb,Zn) uptake and chemical changes in rhizosphere soils of four wetland plants with different radial oxygen loss 被引量:12

Heavy metal (Pb,Zn) uptake and chemical changes in rhizosphere soils of four wetland plants with different radial oxygen loss
下载PDF
导出
摘要 Lead and Zn uptake and chemical changes in rhizosphere soils of four emergent-rooted wetland plants;Aneilema bracteatum,Cyperus alternifolius,Ludwigia hyssopifolia and Veronica serpyllifolia were investigated by two experiments:(1) rhizobag filled with "clean" or metal-contaminated soil for analysis of Pb and Zn in plants and rhizosphere soils;and (2) applied deoxygenated solution for analyzing their rates of radial oxygen loss (ROL).The results showed that the wetland plants with different ROL rates had significant effects on the mobility and chemical forms of Pb and Zn in rhizosphere under flooded conditions.These effects were varied with different metal elements and metal concentrations in the soils.Lead mobility in rhizosphere of the four plants both in the "clean" and contaminated soils was decreased,while Zn mobility was increased in the rhizosphere of the "clean" soil,but decreased in the contaminated soil.Among the four plants,V.serpyllifolia,with the highest ROL,formed the highest degree of Fe plaque on the root surface,immobilized more Zn in Fe plaque,and has the highest effects on the changes of Zn form (EXC-Zn) in rhizosphere under both "clean" and contaminated soil conditions.These results suggested that ROL of wetland plants could play an important role in Fe plaque formation and mobility and chemical changes of metals in rhizosphere soil under flood conditions. Lead and Zn uptake and chemical changes in rhizosphere soils of four emergent-rooted wetland plants;Aneilema bracteatum,Cyperus alternifolius,Ludwigia hyssopifolia and Veronica serpyllifolia were investigated by two experiments:(1) rhizobag filled with "clean" or metal-contaminated soil for analysis of Pb and Zn in plants and rhizosphere soils;and (2) applied deoxygenated solution for analyzing their rates of radial oxygen loss (ROL).The results showed that the wetland plants with different ROL rates had significant effects on the mobility and chemical forms of Pb and Zn in rhizosphere under flooded conditions.These effects were varied with different metal elements and metal concentrations in the soils.Lead mobility in rhizosphere of the four plants both in the "clean" and contaminated soils was decreased,while Zn mobility was increased in the rhizosphere of the "clean" soil,but decreased in the contaminated soil.Among the four plants,V.serpyllifolia,with the highest ROL,formed the highest degree of Fe plaque on the root surface,immobilized more Zn in Fe plaque,and has the highest effects on the changes of Zn form (EXC-Zn) in rhizosphere under both "clean" and contaminated soil conditions.These results suggested that ROL of wetland plants could play an important role in Fe plaque formation and mobility and chemical changes of metals in rhizosphere soil under flood conditions.
出处 《Journal of Environmental Sciences》 SCIE EI CAS CSCD 2010年第5期696-702,共7页 环境科学学报(英文版)
基金 supported by the National Natural Science Foundation of China (No. 30570345,30770417) the Guangdong Natural Science Group Foundation (No.06202438) the Specialized Research Fund for the Doctoral Program of Higher Education,China (No. 20558097)
关键词 LEAD ZINC RHIZOSPHERE wetland plant radial oxygen loss lead zinc rhizosphere wetland plant radial oxygen loss
  • 相关文献

参考文献38

  • 1Allen S E, 1989. Chemical Analysis of Ecological Materials (2nd ed.). Blackwell Scientific Publications, Oxford.
  • 2Armstrong W, 1967. The oxidising activity of roots in waterlogged soils. Plant Physiology, 27(7): 920--926.
  • 3Baker A J M, 1981. Accumulators and excluders-strategies in the response of plants to heavy metals. Journal of Plant Nutrition, 3: 643-654.
  • 4Batty L C, Baker A J M, Wheeler B D, Curtis C D, 2000. The effect of pH and plaque on the uptake of Cu and Mn in Phragmites australis (Cav.) Trin ex, Steudel. Annals of Botany, 86: 647-653.
  • 5Bravin M N, Travassac F, Le Floch M, Hinsinger P, Garnie J M, 2008. Oxygen input controls the spatial and temporal dynamics of arsenic at the surface of a flooded paddy soil and in the rhizosphere of lowland rice (Oryza sativa L.): a microcosm study. Plant and Soil, 312(1): 207-218.
  • 6Brix H, 1993. Macrophyte-mediated oxygen transfer in wetlands: Transport mechanisms and rates. In: Constructed Wetland for Water Quality Improvement (Moshiri G A, ed). CRC Press, Boca Raton FL. 391-398.
  • 7Chabbi A, 2003. Metal concentrations in pore water of the Lusatian lignite mining sediments and internal metal distribution in Juncus bulbosus. Water, Air and Soil Pollution, 3(8): 105- 117.
  • 8Hansel C M, Force M J, Fendorf S, Sutton S, 2002. Spatial and temporal association of As and Fe species on aquatic plant roots. Environmental Science and Technology, 36(7): 1988- 1994.
  • 9Hoagland D R, Arnon D I, 1938. The water culture method for growing plants without soil. California of Agricultural and Experimental Station, 15: 221-227.
  • 10Holmer M, Jensen H S, Christensen K K, Wigand C, Andersen F O, 1998. Sulfate reduction in lake sediments inhabited by the isoetid macrophytes Littorella uniflora and Isoetes lacustris. Aquatic Botany, 60(8): 307-324.

同被引文献169

引证文献12

二级引证文献89

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部