首页> 外文期刊>Geochimica et Cosmochimica Acta: Journal of the Geochemical Society and the Meteoritical Society >Surface complexation of arsenie(V) to iron(III) (hydr)oxides: Structural mechanism from ab initio molecular geometries and EXAFS spectroscopy
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Surface complexation of arsenie(V) to iron(III) (hydr)oxides: Structural mechanism from ab initio molecular geometries and EXAFS spectroscopy

机译:砷(V)与铁(III)(氢氧化)氧化物的表面络合:从头算分子几何结构和EXAFS光谱学的结构机理

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摘要

Arsenic(V), as the arsenate (AsO4)(3-) ion and its conjugate acids, is strongly sorbed to iron(III) oxides (alpha-Fe2O3), oxide hydroxides (alpha-,gamma-FeOOH) and poorly crystalline ferrihydrite (hydrous ferric oxide). The mechanism by which arsenate complexes with iron oxide hydroxide surfaces is not fully understood. There is clear evidence for inner sphere complexation but the nature of the surface complexes is controversial. Possible surface complexes between AsO4 tetrahedra and surface FeO6 polyhedra include bidentate corner-sharing (C-2), bidentate edge-sharing (E-2) and monodentate corner-sharing (V-1). We predicted the relative energies and geometries of AsO4-FeOOH surface complexes using density functional theory calculations on analogue Fe-2(OH)(2)(H2O)(n)AsO2(OH)(2)(3+) and Fe-2(OH)(2)(H2O)(n)AsO4+ clusters. The bidentate corner-sharing complex is predicted to be substantially (55 kJ/mole) more favored energetically over the hypothetical edge-sharing bidentate complex. The monodentate corner-sharing (V-1) complex is very unstable. We measured EXAFS spectra of 0.3 wt. % (AsO4)(3-) sorbed to hematite (alpha-Fe2O3), goethite(alpha-FeOOH), lepidocrocite(gamma-FeOOH) and ferrihydrite and fit the EXAFS directly with multiple scattering. The phase-shift-corrected Fourier transforms of the EXAFS spectra show peaks near 2.85 and 3.26 Angstrom that have been attributed by previous investigators to result from E-2 and C-2 complexes. However, we show that the peak near 2.85 Angstrom appears to result from As-O-O-As multiple scattering and not from As-Fe backscatter. The observed 3.26 Angstrom As-Fe distance agrees with that predicted for the bidentate corner-sharing surface (C-2) complex. We find no evidence for monodentate (V-1) complexes; this agrees with the predicted high energies of such complexes. Copyright (C) 2003 Elsevier Ltd. [References: 34]
机译:砷(V)是砷酸(AsO4)(3-)离子及其共轭酸,被强力吸附到三价铁氧化物(α-Fe2O3),氢氧化物氢氧化物(α-,γ-FeOOH)和结晶性较弱的水铁矿(含水三氧化二铁)。砷酸盐与氢氧化铁氢氧化物表面络合的机理尚未完全了解。有明确的证据表明内球复杂,但是表面复杂的性质是有争议的。 AsO4四面体和FeO6多面体表面之间可能存在的表面络合物包括二齿角共享(C-2),双齿边缘共享(E-2)和单齿角共享(V-1)。我们使用密度泛函理论对模拟Fe-2(OH)(2)(H2O)(n)AsO2(OH)(2)(3+)和Fe-2的密度泛函理论计算来预测AsO4-FeOOH表面配合物的相对能和几何形状(OH)(2)(H2O)(n)AsO4 +团簇。预计双齿角共享二元复合物在能量上比假设的边缘共享双齿复合物显着(55 kJ / mole)更受青睐。单齿角共享(V-1)复合体非常不稳定。我们测得的EXAFS光谱为0.3 wt。 %(AsO4)(3-)吸附到赤铁矿(alpha-Fe2O3),针铁矿(alpha-FeOOH),纤铁矿(gamma-FeOOH)和三水铝石上,并通过多次散射直接适合EXAFS。 EXAFS光谱的相移校正傅里叶变换显示出2.85和3.26埃附近的峰,先前的研究人员将其归因于E-2和C-2配合物。然而,我们表明,在2.85埃附近的峰似乎是由As-O-O-As多重散射而不是由As-Fe反向散射引起的。观测到的3.26埃As-Fe距离与双齿角共享表面(C-2)配合物的预测值相符。我们没有发现单齿(V-1)复合物的证据。这与此类配合物的高能量预测相符。版权所有(C)2003 Elsevier Ltd. [引用:34]

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