首页> 外文期刊>Journal of Environmental Quality >Enhanced Transformation of Lead Speciation in Rhizosphere Soils Using Phosphorus Amendments and Phytostabilization: An X-ray Absorption Fine Structure Spectroscopy Investigation
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Enhanced Transformation of Lead Speciation in Rhizosphere Soils Using Phosphorus Amendments and Phytostabilization: An X-ray Absorption Fine Structure Spectroscopy Investigation

机译:磷修正和植物稳定作用增强了根际土壤中铅形态的转化:X射线吸收精细结构光谱研究

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To formulate successful phytostabilization strategies in a shooting range soil, understanding how heavy metals are immobilized at the molecular level in the rhizosphere soil is critical. Lead (Pb) speciation and solubility in rhizosphere soils of five different plant species were investigated using extended X-ray absorption fine structure (EXAFS) spectroscopy and chemical extraction. The EXAFS analysis indicated that Pb occurred as PbCO3 (37%), Pb sorbed to organic matter (Pb-org: 15%), and Pb sorbed to pedogenic birnessite and/or ferrihydrite (Pb-ox: 36%) in the bulk soil. Comparison of the EXAFS spectra between bulk and rhizosphere soils demonstrated notable differences in fine structure, indicating that Pb species had been modified by rhizosphere processes. The estimated proportion of PbCO3 (25%) in the buckwheat soil was smaller than the other rhizosphere soils (35-39%). The addition of P significantly reduced Pb solubility in the bulk and rhizosphere soil except in the rhizosphere of buckwheat, for which the Pb solubility was 10-fold greater than in the other P-amended soils. This larger solubility in the buckwheat rhizosphere could not be explained by the total Pb speciation in the soil but was presumably related to the acidifying effect of buckwheat, resulting in a decrease of the soil pH by 0.4 units. The reduced Pb solubility by P amendment resulted from the transformation of preexisting PbCO3 (37%) into Pb-5(PO4)(3)Cl (26-32%) in the bulk and rhizosphere soils. In the P-amended rhizosphere soils, Pb-org species were no longer detected, and the Pb-ox pool increased (51-57%). The present study demonstrated that rhizosphere processes modify Pb solubility and speciation in P-amended soils and that some plant species, like buckwheat, may impair the efficiency of Pb immobilization by P amendments.
机译:为了在靶场土壤中制定成功的植物稳定策略,了解重金属如何在分子水平上固定在根际土壤中至关重要。使用扩展的X射线吸收精细结构(EXAFS)光谱学和化学提取方法研究了五种不同植物物种的根际土壤中的铅(Pb)形态和溶解度。 EXAFS分析表明,在大块土壤中,Pb以PbCO3(37%)的形式出现,Pb吸附到有机物上(Pb-org:15%),Pb吸附到成岩的水钠锰矿和/或水铁矿(Pb-ox:36%)。 。块状土壤和根际土壤之间的EXAFS光谱比较表明,精细结构存在显着差异,表明Pb物种已被根际过程改性。荞麦土壤中PbCO3的估计比例(25%)小于其他根际土壤(35-39%)。除荞麦的根际外,P的添加显着降低了Pb在大块土壤和根际土壤中的溶解度,因为Pb的溶解度比其他P改良土壤中的Pb溶解度大10倍。荞麦根际中较大的溶解度无法用土壤中的总铅形态来解释,但可能与荞麦的酸化作用有关,导致土壤pH降低了0.4个单位。通过P修正降低的Pb溶解度是由于在大块土壤和根际土壤中将预先存在的PbCO3(37%)转换为Pb-5(PO4)(3)Cl(26-32%)。在经过P修饰的根际土壤中,不再检测到Pb-org物种,并且Pb-ox库增加了(51-57%)。本研究表明,根际过程改变了P改良土壤中Pb的溶解度和形态,并且某些植物物种(如荞麦)可能会通过P改良剂而损害Pb固定化的效率。

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