Ha Juyoung, Trainor Thomas P, Farges François, Brown Gordon E
Surface & Aqueous Geochemistry Group, Department of Geological & Environmental Sciences, Stanford University, Stanford, California 94305-2115.
Langmuir. 2009 May 19;25(10):5574-85. doi: 10.1021/la8028947.
Sorption of Zn(II)(aq) on hematite (alpha-Fe2O3) nanoparticles (average diameter 10.5 nm) and microparticles (average diameter 550 nm) has been examined over a range of total Zn(II)(aq) concentrations (0.4-7.6 mM) using Zn K-edge EXAFS spectroscopy and selective chemical extractions. When ZnCl2 aqueous solutions were reacted with hematite nanoparticles (HN) at pH 5.5, Zn(II) formed a mixture of four- and six-coordinated surface complexes [Zn(O,OH)4 and Zn(O,OH)6] with an average Zn-O distance of 2.04+/-0.02 A at low sorption densities (Gamma<or=1.1 micromol/m2). On the basis of EXAFS-derived Zn-Fe3+ distances of (3.10-3.12)+/-0.02 A, we conclude that both Zn(O,OH)6 and Zn(O,OH)4 adsorb on octahedral Fe3+(O,OH)6 or pentahedral Fe3+(O,OH)5 surface sites on HN as inner-sphere, mononuclear, bidentate, edge-sharing adsorption complexes at these low sorption densities. It is possible that polynuclear Zn complexes are also present because of the similarity of Zn and Fe backscattering. At higher Zn(II) sorption densities on hematite nanoparticles (Gamma>or=3.38 micromol/m2), we observed the formation of Zn(O,OH)6 surface complexes, with an average Zn-O distance of 2.09+/-0.02 A, a Zn-Zn distance of 3.16+/-0.02 A, and a linear multiple-scattering feature at 6.12+/-0.06 A. Formation of a Zn(OH)2(am) precipitate for the higher sorption density samples (Gamma>or=3.38 micromol/m2) is suggested on the basis of comparison of the EXAFS spectra of the sorption samples with that of synthetic Zn(OH)2am. In contrast, EXAFS spectra of Zn(II) sorbed on hematite microparticles (HM) under similar experimental conditions showed no evidence of surface precipitates even at the same total [Zn(II)(aq)] that resulted in precipitate formation in the nanoparticle system. Instead, Zn(O,OH)6 octahedra (d(Zn-O)=2.10+/-0.02 A) were found to sorb dominantly in an inner-sphere, bidentate, edge-sharing fashion on Fe3+(O,OH)6 octahedra at hematite microparticle surfaces, based on an EXAFS-derived Zn-Fe3+ distance of 3.44+/-0.02 A. CaCl2 selective extraction experiments showed that 10-15% of the sorbed Zn(II) was released from Zn/HN sorption samples, and about 40% was released from a Zn/HM sorption sample. These fractions of Zn(II) are interpreted as weakly bound, outer-sphere adsorption complexes. The combined EXAFS and selective chemical extraction results indicate that (1) both Zn(O,OH)4 and Zn(O,OH)6 adsorption complexes are present in the Zn/HN system, whereas dominantly Zn(O,OH)6 adsorption complexes are present in the Zn/HM system; (2) a higher proportion of outer-sphere Zn(II) surface complexes is present in the Zn/HM system; and (3) Zn-containing precipitates similar to Zn(OH)2(am) form in the nanoparticle system but not in the microparticle system, suggesting a difference in reactivity of the hematite nanoparticles vs microparticles with respect to Zn(II)(aq).
利用锌K边扩展X射线吸收精细结构(EXAFS)光谱和选择性化学萃取方法,研究了在一系列总锌(II)(aq)浓度(0.4 - 7.6 mM)范围内,锌(II)(aq)在赤铁矿(α-Fe₂O₃)纳米颗粒(平均直径10.5 nm)和微粒(平均直径550 nm)上的吸附情况。当氯化锌水溶液在pH 5.5条件下与赤铁矿纳米颗粒(HN)反应时,在低吸附密度(Γ≤1.1 μmol/m²)下,锌(II)形成了四配位和六配位表面络合物[Zn(O,OH)₄和Zn(O,OH)₆]的混合物,平均Zn - O距离为2.04±0.02 Å。基于EXAFS得出的Zn - Fe³⁺距离为(3.10 - 3.12)±0.02 Å,我们得出结论,在这些低吸附密度下,Zn(O,OH)₆和Zn(O,OH)₄均以内层单核双齿边共享吸附络合物的形式吸附在HN的八面体Fe³⁺(O,OH)₆或五面体Fe³⁺(O,OH)₅表面位点上。由于锌和铁背散射的相似性,也可能存在多核锌络合物。在赤铁矿纳米颗粒上更高的锌(II)吸附密度(Γ≥3.38 μmol/m²)下,我们观察到形成了Zn(O,OH)₆表面络合物,平均Zn - O距离为2.09±0.02 Å,Zn - Zn距离为3.16±0.02 Å,以及在6.12±0.06 Å处的线性多重散射特征。基于吸附样品与合成Zn(OH)₂am的EXAFS光谱比较,表明在更高吸附密度样品(Γ≥3.38 μmol/m²)中形成了Zn(OH)₂(am)沉淀。相比之下,在类似实验条件下吸附在赤铁矿微粒(HM)上的锌(II)的EXAFS光谱表明,即使在导致纳米颗粒系统中形成沉淀的相同总[锌(II)(aq)]下,也没有表面沉淀的迹象。相反,基于EXAFS得出的Zn - Fe³⁺距离为3.44±0.02 Å,发现Zn(O,OH)₆八面体(d(Zn - O)=2.10±0.02 Å)主要以内层双齿边共享方式吸附在赤铁矿微粒表面的Fe³⁺(O,OH)₆八面体上。氯化钙选择性萃取实验表明,10 - 15%的吸附锌(II)从Zn/HN吸附样品中释放出来,约40%从Zn/HM吸附样品中释放出来。这些锌(II)部分被解释为弱结合的外层吸附络合物。EXAFS和选择性化学萃取的综合结果表明:(1)Zn/HN系统中同时存在Zn(O,OH)₄和Zn(O,OH)₆吸附络合物,而Zn/HM系统中主要存在Zn(O,OH)₆吸附络合物;(2)Zn/HM系统中存在更高比例的外层锌(II)表面络合物;(3)纳米颗粒系统中形成了类似于Zn(OH)₂(am)的含锌沉淀,而微粒系统中未形成,这表明赤铁矿纳米颗粒与微粒在与锌(II)(aq)反应性方面存在差异。