环境修复
镉
锌
金属
环境化学
水稻
化学
硅
土壤改良剂
粉煤灰
污染
糙米
土壤pH值
熔渣(焊接)
土壤水分
冶金
农学
环境科学
材料科学
土壤科学
生态学
生物化学
有机化学
基因
生物
食品科学
作者
Hai-Hong Gu,Hao Qiu,Tian Tian,Shu-Shun Zhan,Tenghaobo Deng,Rufus L. Chaney,Shizhong Wang,Yetao Tang,Jean‐Louis Morel,Rongliang Qiu
出处
期刊:Chemosphere
[Elsevier]
日期:2011-04-15
卷期号:83 (9): 1234-1240
被引量:289
标识
DOI:10.1016/j.chemosphere.2011.03.014
摘要
The mechanisms of stabilization by silicon-rich amendments of cadmium, zinc, copper and lead in a multi-metal contaminated acidic soil and the mitigation of metal accumulation in rice were investigated in this study. The results from a pot experiment indicated that the application of fly ash (20 and 40 g kg−1) and steel slag (3 and 6 g kg−1) increased soil pH from 4.0 to 5.0–6.4, decreased the phytoavailability of heavy metals by at least 60%, and further suppressed metal uptake by rice. Diffusion gradient in thin-film measurement showed the heavy metal diffusion fluxes from soil to solution decreased by greater than 84% after remediation. X-ray diffraction analysis indicated the mobile metals were mainly deposited as their silicates, phosphates and hydroxides in amended treatments. Moreover, it was found metal translocation from stem to leaf was dramatically restrained by adding amendments, which might be due to the increase of silicon concentration and co-precipitation with heavy metals in stem. Finally, a field experiment showed the trace element concentrations in polished rice treated with amendments complied with the food safety standards of China. These results demonstrated fly ash and steel slag could be effective in mitigating heavy metal accumulation in rice grown on multi-metal contaminated acidic soils.
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