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Zn sorption to biogenic bixbyite-like Mn2O3 produced by Bacillus CUA isolated from soil: XAFS study with constraints on sorption mechanism

机译:从土壤中分离的芽孢杆菌CUA产生的锌对生物型方铁锰矿型Mn2O3的锌吸附:XAFS研究,其吸附机理受到限制

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Although most reported biogenic Mn oxides are hexagonal birnessites, other types of biogenic Mn oxides also commonly occur in the environment. Compared to hexagonal birnessites, the sorption characteristics and the underlying mechanism of adsorption of heavy-metal ions to those of the other biogenic Mn oxides are still rarely addressed. A strain of Mn-oxidizing bacteria isolated from Claypani-Udic Argosols was identified as Bacillus with 16S rRNA sequencing analysis. The bacterial Mn(II) oxidation product is a poorly crystallized bixbyite-like Mn2O3 (alpha-Mn2O3). The maximum adsorption capacities of Zn(II) onto the biogenic Mn oxide at pH 6.00 and pH 4.00 were 663 mmol/kg and 629 mmol/kg, respectively. The complex structure of adsorbed Zn2+ was constrained using Zn EXAFS analysis, combined with structural parameters of the biogenic Mn oxide with alternately arranged regular and distorted MnO6 octahedra obtained through multiple-FEFF fitting of Mn EXAFS data. At a relatively low Zn2+ loading (100 mmol/kg, pH 6.00), Zn2+ adsorbed onto the biogenic Mn oxide with two types of tetrahedrally coordinated complexes, i.e. (1) coordinated with one regular/distorted MnO6 octahedron as a monodentate-mononuclear complex and (2) with two MnO6 octahedra (two regular, two distorted or a regular and a distorted) as a bidentate-binuclear complex. While, at a relatively high Zn2+ loading (556 mmol/kg, pH 4.00; 635 mmol/kg, pH 6.00), two types of octahedrally coordinated complexes are constrained, i.e. (1) coordinated with one regular/distorted MnO6 octahedron as a monodentate-mononuclear complex and (2) with one regular MnO6 octahedron as a bidentate mononuclear complex. This research extends further understanding on the formation of biogenic Mn oxides in the environment and the adsorption mechanism of heavy metals onto low-valence Mn oxides with distorted structures. The application of low valence biogenic Mn oxides to efficiently remove heavy metals from water is also shown to be promising. (C) 2014 Elsevier B.V. All rights reserved.
机译:尽管大多数报道的生物锰氧化物是六角水钠锰矿,但其他类型的生物锰氧化物也通常在环境中出现。与六角形水钠锰矿相比,重金属离子对其他生物锰氧化物的吸附特性和潜在的吸附机理仍然很少得到解决。通过16S rRNA测序分析,从Claypani-Udic Argosols中分离出的Mn氧化细菌菌株被鉴定为芽孢杆菌。细菌Mn(II)氧化产物是结晶度较弱的方铁矿状Mn2O3(α-Mn2O3)。在pH 6.00和pH 4.00下,Zn(II)在生物锰氧化物上的最大吸附容量分别为663 mmol / kg和629 mmol / kg。 Zn EXAFS分析法限制了吸附的Zn2 +的复杂结构,结合生物Mn氧化物的结构参数,并通过Mn EXAFS数据的多次FEFF拟合获得了交替排列的规则和扭曲的MnO6八面体。在相对较低的Zn2 +负载量(100 mmol / kg,pH 6.00)下,Zn2 +以两种类型的四面体配位配合物吸附到生物锰氧化物上,即(1)与一种规则/扭曲的MnO6八面体配位为单齿-单核配合物,以及(2)具有两个MnO6八面体(两个规则的,两个扭曲的或规则的和扭曲的)作为双齿-双核配合物。而在较高的Zn2 +负载量(556 mmol / kg,pH 4.00; 635 mmol / kg,pH 6.00)下,两种八面体配位配合物受到约束,即(1)与一个规则/扭曲的MnO6八面体配成单齿。 -单核络合物;(2)以一个规则的MnO6八面体作为双齿单核络合物。该研究进一步扩展了对环境中生物型锰氧化物的形成以及重金属在结构变形的低价锰氧化物上的吸附机理的认识。应用低价生物型锰氧化物从水中有效去除重金属也显示出了希望。 (C)2014 Elsevier B.V.保留所有权利。

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