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Speciation of Zn and Cu in Technosol and evaluation of a sequential extraction procedure using XAS, XRD and SEM-EDX analyses

机译:Zn和Cu在XAS,XRD和SEM-EDX分析中的Zn和Cu的评价和序列提取过程的评价

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Metal speciation, linked directly to bioaccessibility and lability, is a key to be considered when assessing associated human and environmental health risks originated from anthropogenic activities. To identify the Zn and Cu speciation in the highly contaminated, technogenically transformed soils (Technosol) from the impact zone near the industrial sludge reservoirs of chemical plant (Siverskyi Donets River floodplain, southern Russia), the validity of the BCR sequential extraction procedure using the X-ray absorption fine-structure and X-ray powder diffraction (XRD) analyses was examined after each of the three stages. After the removal of exchange and carbonate-bonded Zn and Cu compounds from Technosol (first stage of extraction), the resulting residual soil showed enrichment in a great diversity of metal compounds, primarily with Me-S and Me-O bonds. The number of compounds with a higher solubility decreased at the subsequent stages of extraction. In the residual soil left over after extracting the first and second fractions, the dominant Zn-S bond appeared as wurtzite (hexagonal ZnS) that made up more than 50%, while the Cu-S bond was almost completely represented only by chalcocite (Cu2S). The XRD analysis revealed the authigenic minerals of metals with S: sphalerite (cubic ZnS), wurtzite (hexagonal ZnS), covellite (CuS) and bornite (Cu5FeS4). The scanning electron microscopy data confirmed that wurtzite was the dominant form of Me with sulfur-containing and carbonate-containing minerals. The Zn-S bond was the main component (57%), whereas the Cu-O bond was dominant in the residual fraction (the fraction after the third-stage extraction). The results revealed that the composition of the residual fractions might include some of the most stable and hard-to-recover metal compounds of technogenic origin. Thus, the application of the novel instrumental methods, coupled with the chemical fractionation, revealed the incomplete selectivity of the extractants in the extraction of Zn and Cu in long-term highly contaminated soils.
机译:在评估源自人为活动的人体和环境健康风险时,金属形态直接与生物可接近性和宽容相连,是在评估相关的人类和环境健康风险时被视为关键。从化工厂的工业污泥储层附近的影响区(Siverkyi Donets Riverplain,Southern俄罗斯)附近的影响区识别高度污染的技术转化的土壤(Technosol)中的Zn和Cu形态,使用了BCR连续提取程序的有效性在三个阶段中的每一个后检查X射线吸收细结构和X射线粉衍射(XRD)分析。除去从技术醇的交换和碳酸盐键合的Zn和Cu化合物(萃取的第一阶段)后,得到的残留土壤在巨大多样化的金属化合物中显示出富集,主要是ME-S和ME-O键。具有较高溶解度的化合物的数量在随后的萃取阶段下降。在提取第一和第二级分后留下的残余土壤中,显性Zn-S键出现为纯钛矿(六边形ZnS),其占50%以上,而Cu-S键几乎完全由Chalocite(Cu2S)表示)。 XRD分析揭示了与S:斯普利特(立方ZnS),紫立茨(六边形ZnS),Covellite(CUS)和Bigrite(CU5FES4)的金属的Aheatigenic矿物质。扫描电子显微镜数据证实,Wurtzite是含硫和含碳酸盐的矿物质的主要形式。 Zn-S键是主要成分(57%),而Cu-O键在残留级分中显着(第三阶段萃取后的级分)。结果表明,残留级分的组成可包括一些最稳定且恢复的技术原产地的金属化合物。因此,新颖的仪器方法与化学分级相结合的应用揭示了萃取剂在长期高度受污染的土壤中提取Zn和Cu中的萃取剂的不完全选择性。

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