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首页> 外文期刊>Geochimica et Cosmochimica Acta: Journal of the Geochemical Society and the Meteoritical Society >Effect of phosphate, silicate, and Ca on Fe(III)-precipitates formed in aerated Fe(II)- and As(III)-containing water studied by X-ray absorption spectroscopy
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Effect of phosphate, silicate, and Ca on Fe(III)-precipitates formed in aerated Fe(II)- and As(III)-containing water studied by X-ray absorption spectroscopy

机译:X射线吸收光谱法研究了磷酸盐,硅酸盐和Ca对充气的含Fe(II)和As(III)的水中形成的Fe(III)沉淀的影响

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摘要

We studied the local coordination and structure of Fe(III)-precipitates formed In aerated Fe(II)- and As(III)-containing water (buffered to pH 7 by 8 mM bicarbonate) using synchrotron-based X-ray absorption spectroscopy (XAS) at the K-edges of Fe, P, Ca, and As. Dissolved phosphate, silicate, and Ca at different ratios relative to each other and to Fe affect the forming Fe(III)-phases in a complex manner. The high affinity of phosphate for Fe(III) results in the predominant precipitation of Fe(III)-phosphate as long as dissolved phosphate is present, with Fe(III) polymerization limited to small oligomers. In Ca-containing solution, Ca uptake by Fe(III)-Ca-phosphate involves the linkage and coagulation of negatively charged Fe(III)-phosphate oligomers via Ca-O-P bonds. In the absence of phosphate, dissolved silicate at Si/Fe ratios above similar to 0.5 results in the formation of hydrous ferric oxide (HFO) with mainly edge-sharing Fe-Fe linkage. At lower Si/Fe ratios of similar to 0.5-0.1, mainly 2-line ferrihydrite (2L-Fh) with both edge- and corner-sharing Fe-Fe linkage forms. Only in the absence of phosphate at low Si/Fe ratio, lepidocrocite (Lp) forms. In solutions containing sufficient Fe(II), aeration results in the sequential precipitation of Fe(III)-(Ca-)phosphate, HFO or 2L-Fh (depending on solution Si/Fe), and finally Lp. The amount and oxidation state of As co-precipitated with Fe(III) are controlled by the co-oxidation of As(III) with Fe(II), which increases with initial Fe/As ratio, and the competitive uptake of phosphate, As(V) and less strongly sorbing silicate and As(III). This study demonstrates that the diversity and sequence of short-range-ordered Fe(Ill)-precipitates forming by Fe(II) oxidation in near-neutral natural waters depend on water chemistry. Because differences in the colloidal stability and biogeochemical reactivity of these phases will affect the fate of associated major and trace elements, the different Fe(III)-precipitates and their specific biogeochemical properties must be taken into account when addressing nutrient and contaminant dynamics at redox boundaries in natural and engineered systems.
机译:我们使用基于同步加速器的X射线吸收光谱研究了在充气的含Fe(II)和As(III)的水中(由8 mM碳酸氢盐缓冲至pH 7的水中)形成的Fe(III)沉淀物的局部配位和结构( XAS)位于Fe,P,Ca和As的K边缘。溶解的磷酸盐,硅酸盐和Ca彼此之间和与Fe的比例不同,以复杂的方式影响形成的Fe(III)相。只要存在溶解的磷酸盐,磷酸盐对Fe(III)的高亲和力就会导致Fe(III)-磷酸盐的主要沉淀,而Fe(III)聚合仅限于小的低聚物。在含Ca的溶液中,Fe(III)-Ca-磷酸盐吸收Ca涉及通过Ca-O-P键使带负电的Fe(III)-磷酸盐低聚物连接和凝结。在不存在磷酸盐的情况下,高于约0.5的Si / Fe比的溶解硅酸盐会导致形成含水氧化铁(HFO),其主要具有边缘共享的Fe-Fe键。在较低的Si / Fe比(近似于0.5-0.1)下,主要是具有边角共享和角边共享的Fe-Fe键合形式的2线亚铁水合物(2L-Fh)。仅在低Si / Fe比下不存在磷酸盐的情况下,才能形成纤铁矿(Lp)。在含有足够的Fe(II)的溶液中,曝气导致Fe(III)-(Ca-)磷酸盐,HFO或2L-Fh(取决于溶液Si / Fe)和Lp的连续沉淀。与Fe(III)共沉淀的As的量和氧化态由As(III)与Fe(II)的共氧化控制,该氧化随初始Fe / As比的增加而增加,并且磷酸盐,As的竞争性吸收(V)和吸附力较弱的硅酸盐和As(III)。这项研究表明,在接近中性的天然水中,由Fe(II)氧化形成的短程Fe(III)沉淀物的多样性和序列取决于水的化学性质。由于这些相的胶体稳定性和生物地球化学反应性的差异会影响相关主要和微量元素的命运,因此在处理氧化还原边界的养分和污染物动态时,必须考虑不同的Fe(III)沉淀物及其特定的生物地球化学性质。在自然和工程系统中。

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