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Arsenate adsorption on an Fe-Ce bimetal oxide adsorbent: Role of surface properties

机译:砷酸盐在Fe-Ce双金属氧化物吸附剂上的吸附:表面性质的作用

摘要

An Fe-Ce bimetal adsorbent was investigated with X-ray powder diffraction XRD), transmission electron micrograph (TEM), Fourier transform infrared spectra (FTIR), and X-ray photoelectron spectroscopy (XPS) methods for a better understanding of the effect of surface properties on arsenate (As(V) adsorption. In the adsorption test, the bimetal oxide adsorbent showed a significantly higher As(V) adsorption capacity than the referenced Ce and Fe oxides (CeO2 and Fe3O4) prepared by the same procedure and some other arsenate adsorbents reported recently. XRD measurement of the adsorbent demonstrated that the phase of magnetite (Fe3O4) disappears gradually with the increasing dosage of Ce4+ ions until reaching a molar ratio of Ce4+ to Fe3+ and Fe2+ of 0.08:0.2:0.1 (Fe-CeO8 refers to the adsorbent prepared at this ratio), and the phase of CeO2 begins to appear following a further increase of the Ce dose. Combined with the results of TEM observation, it was assumed that a solid solution of Fe-Ce is formed following the disappearance of the magnetite phase. Occurrence of a characteristic surface hydroxyl group (MOH, metal surface hydroxyl, 1126 cm(-1)), which showed the highest band intensity in the solid solution state, was confirmed on the bimetal oxide adsorbent by FTIR. Quantificational calculation from the XPS narrow scan results of O(1s) spectra also indicated that the formation of the bimetal Fe-CeO8 was composed of more hydroxyl (30.8%) than was the formation of CeO2 and Fe3O4 (12.6% and 19.6%). The results of adsorption tests on Fe-CeO8 at different As(V) concentrations indicated that both the integral area of the As-O band at 836 cm(-1) and the As(V) adsorption capacity increased almost linearly with the decrease of the integral area of M-OH bands at 1126 cm(-1), proving that the adsorption of As(V) by Fe-CeO8 is mainly realized through the mechanism of quantitative ligand exchange. The atomic ratio of Fe on Fe-CeO8 decreased from 20.1% to 7.7% with the increase of the As atom ratio from 0 to 16% after As(V) adsorption, suggesting that As(V) adsorption might be realized through the replacement of the M-OH group of Fe (Fe-OH) with arsenate. The well splitting of three v(3) bands at As-O band (836 cm(-1)) of FTIR and the hydroxyl ratio (1.7) of Fe-CeO8 calculated from the XPS results suggested that the diprotonated monodentate complex (SOAsO(OH)(2)) is possibly dominant on the surface of Fe-CeO8.
机译:用X射线粉末衍射(XRD),透射电子显微照片(TEM),傅立叶变换红外光谱(FTIR)和X射线光电子能谱(XPS)方法研究了Fe-Ce双金属吸附剂,以更好地了解碳纳米管的效果。砷酸盐(As(V)吸附)的表面性质。在吸附试验中,双金属氧化物吸附剂的砷(V)吸附容量明显高于通过相同步骤和其他方法制备的参考铈和铁氧化物(CeO2和Fe3O4)砷酸盐吸附剂的最新报道。吸附剂的XRD测量表明,随着Ce4 +离子剂量的增加,磁铁矿(Fe3O4)的相逐渐消失,直到Ce4 +与Fe3 +和Fe2 +的摩尔比为0.08:0.2:0.1(Fe-CeO8指(以该比例制备的吸附剂),随着Ce剂量的进一步增加,开始出现CeO2相,结合TEM观察的结果,认为Fe-C的固溶体e是在磁铁矿相消失后形成的。通过FTIR在双金属氧化物吸附剂上证实出现了特征性表面羟基(MOH,金属表面羟基,1126 cm(-1)),该峰在固溶态下显示出最高的能带强度。根据O(1s)光谱的XPS窄扫描结果进行的定量计算还表明,与CeO2和Fe3O4的形成(12.6%和19.6%)相比,双金属Fe-CeO8的形成由更多的羟基(30.8%)组成。在不同As(V)浓度下对Fe-CeO8的吸附测试结果表明,在836 cm(-1)处As-O带的积分面积和As(V)的吸附容量几乎都随着线性下降而线性增加。 M-OH谱带在1126 cm(-1)处的积分面积,证明Fe-CeO8吸附As(V)主要是通过定量配体交换机制实现的。吸附As(V)后,Fe在CeO8上的原子比从20.1%降低到7.7%,随着As原子比从0增加到16%,这表明可以通过置换砷来实现As(V)的吸附。 Fe(Fe-OH)与砷的M-OH基。由XPS结果计算得出的FTIR的As-O带(836 cm(-1))的三个v(3)带以及Fe-CeO8的羟基比率(1.7)的三个v(3)谱带的良好拆分表明,双质子化单齿复合物(SOAsO( OH)(2))可能在Fe-CeO8的表面占主导地位。

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