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Effects of phosphate and silicate on the transformation of hydroxycarbonate green rust to ferric oxyhydroxides

机译:磷酸盐和硅酸盐对羟基碳酸盐绿锈转化为羟基氧化铁的影响

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Hydroxycarbonate green rust (GR1(CO32-)) was prepared by oxidation of aerated aqueous suspensions of Fe(II) hydroxide, and the presence of light promoted the transformation of GR1(CO32-) by dissolved O-2 at pH 7.8 and 25 degrees C. Further transformation of GR1(CO32-) in the light was conducted in the presence of orthophosphate (P) or silicate (Si) anions, followed by solution analysis and solid product characterization using X-ray diffraction (XRD), transmission electron microscopy (TEM), and Fourier transform infrared spectroscopy (FTIR). Results show that both P and Si anions significantly affect the transformation of GR1(CO32-) through adsorption on the intermediate products. The time required for complete GR1(CO32-) transformation and the phases, crystallinity and morphology of the transformation products all depend on the Fe/anion molar ratio. When compared to the control, the transformation can be promoted by low Si concentrations but retarded by P. With decreasing Fe/P ratio, the products change from acicular goethite (absence of P) to tabular lepidocrocite (Fe/P: 120-48) and to mixed phases of platelets of ferric GR1(CO32-) (EX-GR1) and minor ferrihydrite (Fe/P: 24-3). In terms of Si, the products are goethites when the Fe/Si ratio of 48-12, and with increasing ratio, the goethite crystallinity and particle size decrease and the morphology changes from acicular (absence of Si) to plate-like or isodimensional particles. The goethite morphology at low Fe/Si ratios is comparable to natural goethite samples commonly found in soils. At Fe/Si = 3, the products are EX-GR1 platelets with minor ferrihydrite coexisting. The likely pathway of the oxidative GR1(CO32-) transformation in the control system and in the presence of low concentrations of Si (Fe/SiP >= 12) is GR1(CO32-) -> amorphous gamma-FeOOH-like phase -> alpha-FeOOH via a dissolution-oxidation-precipitation mechanism. In addition, Fe(II) released during dissolution of GR1(CO32-) is adsorbed on the products and the transformation of the gamma-FeOOH-like phase to goethite is catalyzed by the adsorbed Fe (II). For the P system, the released Fe(II) forms ternary surface complexes with P on the mineral surfaces without any catalytic role, leading to the formation of lepidocrocite at low P concentrations. Clearly, the oxidative transformation of green rust to various crystalline iron oxyhydroxides depends on the type and concentration (Fe/anion molar ratio) of co-existing anions. This study also suggests that the natural goethite formed by Fe(II) oxidation in the form of plate-like or isodimensional particles is most likely related to the ubiquitous presence of silicates in soil environments. (C) 2015 Elsevier Ltd. All rights reserved.
机译:通过氧化氢氧化铁(II)的充气水悬浮液制备羟基碳酸盐绿锈(GR1(CO32-)),并且光的存在促进了pH 7.8和25度下溶解的O-2转化GR1(CO32-)的转化。 C.在正磷酸根(P)或硅酸根(Si)阴离子的存在下,进一步进行GR1(CO32-)的光转化,然后使用X射线衍射(XRD),透射电子显微镜对溶液进行分析和固体产物表征(TEM)和傅立叶变换红外光谱(FTIR)。结果表明,P和Si阴离子均通过吸附在中间产物上而显着影响GR1(CO32-)的转化。完全GR1(CO32-)转化所需的时间以及转化产物的相,结晶度和形态均取决于Fe /阴离子摩尔比。与对照相比,低Si含量可促进转变,但P则可抑制转变。随着Fe / P比的降低,产物从针状针铁矿(不含P)变为板状轻铁云母(Fe / P:120-48)以及铁的GR1(CO32-)(EX-GR1)和次水铁矿(Fe / P:24-3)的血小板的混合相。就硅而言,当Fe / Si比为48-12时,产物为针铁矿,并且随着比率的增加,针铁矿的结晶度和粒径降低,形态从针状(不含Si)变为板状或等维颗粒。低Fe / Si比的针铁矿形态与土壤中常见的天然针铁矿样品相当。在Fe / Si = 3时,产物为EX-GR1血小板,并伴有少量亚铁酸盐。在控制系统中并且在低浓度的Si(Fe / SiP> = 12)存在下,氧化GR1(CO32-)转变的可能途径是GR1(CO32-)->非晶γ-FeOOH样相->通过溶解-氧化-沉淀机制的α-FeO​​OH。另外,在GR1(CO32-)溶解期间释放的Fe(II)被吸附在产物上,并且被吸附的Fe(II)催化了类似γ-FeOOH的相转变为针铁矿。对于P系统,释放的Fe(II)在矿物表面上与P形成三元表面配合物,而没有任何催化作用,从而导致在低P浓度下形成纤铁矿。显然,生铁锈氧化成各种结晶的羟基氧化铁的氧化转化取决于共存阴离子的类型和浓度(Fe /阴离子摩尔比)。这项研究还表明,由Fe(II)氧化形成的板状或等维颗粒形式的天然针铁矿很可能与土壤环境中硅酸盐的普遍存在有关。 (C)2015 Elsevier Ltd.保留所有权利。

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