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首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Trace metal ion partitioning at polymer film-metal oxide interfaces: Long-period X-ray standing wave study
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Trace metal ion partitioning at polymer film-metal oxide interfaces: Long-period X-ray standing wave study

机译:聚合物膜-金属氧化物界面处的痕量金属离子分配:长周期X射线驻波研究

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The distributions of Pb(II) and As(V)O-4(3-) ions in the interfacial region between thin poly(acrylic acid) (PAA) coatings and α-Al2O3(0001), α-Al2O3(1-102), and α-Fe2O3(0001) single-crystal substrates were studied using long-period X-ray standing wave fluorescent yield (XSW-FY) and X-ray reflectivity techniques. The PAA film serves as a simplified analogue of natural organic matter (NOM) coatings on mineral surfaces. Such coatings are often assumed to play an important role in the partitioning and speciation of trace heavy metals in soils and aquatic systems. On the α-Al2O3(1-102) surface, Pb(II) ions were found to preferentially bind to the PAA coating, even at sub-micromolar Pb(H) concentrations, and to partition increasingly onto the metal oxide surface as the Pb(II) concentration was increased ([Pb(II)] = 5 x 10(-8) to 2 x 10(-5) M, pH = 4.5; 0.01 M NaCl background electrolyte). This observation suggests that the binding sites in the PAA coating outcompete those on the α-Al2O3(1-102) surface for Pb(II) under these conditions. The As(V)O-4(3-) oxoanion partitions preferentially to the α-Al2O3(1-102) surface for the As(V)O-4(3-) concentrations examined (1 x 10(-7) to 5 x 10(-7) M, pH = 4.5; 0.01 M NaCl background electrolyte). Partitioning of Pb(H) (at 1 x 10(-7) M and pH 4.5) was also examined at PAA/α-Al2O3(0001), and PAA/α-Fe2O3(0001) interfaces using XSW-FY measurements. Our results show that the PAA coating was the dominant sink for Pb(II) in all three samples; however, the relative order of reactivity of these metal oxide surfaces with respect to Pb(II) sorption is α-Fe2O3(0001) > α-Al2O3(1-102) > α-Al2O3(0001). This order is consistent with that found in previous studies of the PAA-free surfaces. These XSW results strongly suggest that the characteristics of the organic film (i.e., binding affinity, type, and density of binding sites) as well as metal oxide substrate reactivity are key factors determining the distribution and speciation of Pb(II) and As(V)O-4(3-) at organic film/metal oxide interfaces.
机译:Pb(II)和As(V)O-4(3-)离子在薄丙烯酸(PAA)涂层与α-Al2O3(0001),α-Al2O3(1-102)之间的界面区域中的分布),并使用长周期X射线驻波荧光产率(XSW-FY)和X射线反射率技术研究了α-Fe2O3(0001)单晶衬底。 PAA膜可作为矿物表面上天然有机物(NOM)涂层的简化类似物。通常认为这种涂层在土壤和水生系统中痕量重金属的分配和形态形成中起着重要作用。在α-Al2O3(1-102)表面上,发现即使在亚微摩尔Pb(H)浓度下,Pb(II)离子也优先结合到PAA涂层上,并逐渐以Pb的形式分配到金属氧化物表面上(II)浓度增加([Pb(II)] = 5 x 10(-8)到2 x 10(-5)M,pH = 4.5; 0.01 M NaCl背景电解质)。该观察结果表明,在这些条件下,PAA涂层中的结合位点超过了Pb(II)的α-Al2O3(1-102)表面上的结合位点。对于所检查的As(V)O-4(3-)浓度(1 x 10(-7)至5 x 10(-7)M,pH = 4.5; 0.01 M NaCl背景电解质)。还使用XSW-FY测量在PAA /α-Al2O3(0001)和PAA /α-Fe2O3(0001)界面上检查了Pb(H)(在1 x 10(-7)M和pH 4.5下)的分配。我们的结果表明,在所有三个样品中,PAA涂层都是Pb(II)的主要吸收剂;但是,这些金属氧化物表面的反应性相对于Pb(II)的吸附的相对顺序为α-Fe2 O 3(0001)&GT。 α-Al2O3(1-102)> α-Al2O3(0001)。此顺序与先前对无PAA表面的研究中发现的顺序一致。这些XSW结果强烈表明有机膜的特性(即结合亲和力,结合位点的类型和密度)以及金属氧化物底物反应性是决定Pb(II)和As(V)的分布和形态的关键因素。在有机膜/金属氧化物界面处的O-4(3-)。

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