Potential use of king grass (Pennisetum purpureumSchumach. xPennisetum glaucum(L.) R.Br.) for phytoextraction of cadmium from fields
文献类型: 外文期刊
作者: Zhou, Zhiqiang 1 ; Guo, Yangyang 1 ; Hu, Li 1 ; He, Lan 1 ; Xu, Bo 1 ; Huang, Zhenrui 2 ; Wang, Guo 1 ; Chen, Yanhui 1 ;
作者机构: 1.Fujian Agr & Forestry Univ, Coll Resources & Environm, Fuzhou 350002, Fujian, Peoples R China
2.Guangdong Acad Agr Sci, Crops Res Inst, Guangdong Prov Key Lab Crop Genet & Improvement, Guangzhou 510640, Peoples R China
关键词: Cadmium; Growth period; Phytoextraction; Pennisetum purpureumSchumach; xPennisetum glaucum(L; ) R; Br; Soil type
期刊名称:ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH ( 影响因子:4.223; 五年影响因子:4.306 )
ISSN: 0944-1344
年卷期: 2020 年 27 卷 28 期
页码:
收录情况: SCI
摘要: Using king grass (Pennisetum purpureumSchumach. xPennisetum glaucum(L.) R.Br.) for phytoextraction is a promising technology for producing large amounts of biomass fuel while remediating contaminated soil. To assess the practical phytoextraction capacity of king grass, we conducted a field experiment with three different soil types (loam, sandy loam, clay loam) and cadmium (Cd) concentrations (0, 0.25, 0.5, 1, 2, 4, 8, and 16 mg kg(-1), aged stably for 6 years). King grass were harvested at two different periods (elongation and maturity) to identify the optimal harvest time for extraction efficiency. The results showed that all treatments had bioconcentration factor (BCF) > 1 and translocation factor (TF) < 1; Cd is mainly stored in the roots. However, due to a high shoot biomass, the highest quantity of Cd extracted from shoots was 2.75 mg plant(-1), from the experimental group with 16 mg kg(-1)Cd added in sandy loam. A significant positive relationship (P < 0.05) was observed between the amount of Cd extracted from king grass stems, leaves, and roots from soil with the diethylene triamine pentacetate acid (DTPA) extractable Cd concentration. The Cd concentration in shoots at the maturity stage is lower than at the elongation stage, mainly due to the effect of biological dilution. Meanwhile, there is significantly more biomass (P < 0.05) at the maturity stage than at the elongation stage. At the latter, the extraction efficiency of the three soils was loam > sandy loam > clay loam, while at maturity it was sandy loam > clay loam > loam. This change in extraction efficiency can be attributed mainly to differences in soil DTPA-extractable Cd concentration and growth rate caused by differences in soil physical and chemical properties. According to calculations from multiple harvests using three types of soil, remediating contaminated soil with 0-16 mg kg(-1)Cd would take 13.9-224.5 and 19.5-250.6 years, extracting 7.21-265.23 and 4.96-330.52 g ha(-1)Cd while producing 33.62-66.50 and 73.8-110.5 t ha(-1)dry biomass at the elongation (90 days) and maturity (120 days) stages, respectively. In summary, king grass has major potential for remediating Cd-contaminated soil while producing large volumes of biofuel.
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