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Adsorption of antimony(V) onto Mn(II)-enriched surfaces of manganese-oxide and Fe-Mn binary oxide

机译:锑(V)在富锰(Mn)的氧化锰和铁锰二元氧化物表面的吸附

摘要

Manganese(IV) oxide [Mn(IV)] potentially oxidizes antimony(III) [Sb(III)] to antimony(V) [Sb(V)] and improves Sb removal by Fe-Mn binary oxide (FMBO) through an oxidation-adsorption mechanism. This study focused on the effect of Mn(IV) reductive dissolution by potassium sulfite (K2SO3) on Sb(V) adsorption onto manganese oxide (Mn-oxide) and FMBO. The maximum Sb(V) adsorption (Q(max,Sb(v))) increased from 1.0 to 1.1 mmol g(-1) for FMBO and from 0.4 to 0.6 mmol g(-1) for Mn-oxide after pretreatment with 10 mmol L-1 K2SO3. The addition of 2.5 mmol L-1 Mn2+ also significantly improved Sb(V) adsorption, and the observed Q(max,Sb(v)) increased to 1.4 and 1.0 mmol g(-1) for FMBO and Mn-oxide, respectively, with pre-adsorbed Mn2+. Neither K2SO3 nor Mn2+ addition had any effect on Sb(V) adsorption onto iron oxide (Fe-oxide). Mn2+ introduced by either Mn(IV) dissolution or addition tended to form outer-sphere surface complexes with hydroxyl groups on Mn-oxide surfaces (equivalent to MnOOH). Mn2+ at 2.5 mmol L-1 shifted the isoelectric point (pH(iep)) from 7.5 to 10.2 for FMBO and from 4.8 to 9.2 for Mn-oxide and hence benefited Sb(V) adsorption. The adsorption of Sb(V) onto Mn2+-enriched surfaces contributed to the release of Mn2+, and the X-ray photoelectron spectra also indicated increased binding energy of Mn 2p(3/2) after the adsorption of Sb(V) onto K2SO3-pretreated FMBO and Mn-oxide. Sb(V) adsorption involved the formation of inner-sphere complexes and contributed to the release of Mn2+. In the removal of Sb(III) by Mn-based oxides, the oxidation of Sb(III) to Sb(V) by Mn(IV) oxides had an effect; however, Mn(IV) dissolution and Mn2+-enrichment also played an important role. (C) 2015 Elsevier Ltd. All rights reserved.
机译:氧化锰[Mn(IV)]可能将锑(III)[Sb(III)]氧化为锑(V)[Sb(V)],并通过氧化法改善Fe-Mn二元氧化物(FMBO)对Sb的去除吸附机制。这项研究的重点是亚硫酸钾(K2SO3)还原Mn(IV)对Sb(V)吸附在氧化锰(Mn-氧化物)和FMBO上的影响。经10次预处理后,FMBO的最大Sb(V)吸附量(Q(max,Sb(v)))从1.0增加到1.1 mmol g(-1),Mn-氧化物从0.4增加到0.6 mmol g(-1)毫摩尔L-1 K2SO3。 2.5 mmol L-1 Mn2 +的添加也显着改善了Sb(V)的吸附,对于FMBO和Mn-氧化物,观察到的Q(max,Sb(v))分别增加到1.4和1.0 mmol g(-1),与预先吸附的Mn2 +。 K2SO3和Mn2 +的添加对Sb(V)吸附在氧化铁(Fe-氧化物)上都没有任何影响。通过Mn(IV)溶解或添加而引入的Mn2 +倾向于在Mn-氧化物表面上形成带有羟基的外球表面复合物(相当于MnOOH)。 2.5 mmol L-1的Mn2 +使FMBO的等电点(pH(iep))从7.5转移到10.2,而Mn-氧化物的等电点从4.8转移到9.2,因此有利于Sb(V)吸附。 Sb(V)在富含Mn2 +的表面上的吸附有助于Mn2 +的释放,并且X射线光电子能谱还表明,Sb(V)吸附在K2SO3上后,Mn 2p(3/2)的结合能增加。预处理的FMBO和二氧化锰。 Sb(V)吸附涉及内球络合物的形成,并有助于释放Mn2 +。在用锰基氧化物去除Sb(III)时,用Mn(IV)氧化物将Sb(III)氧化为Sb(V)产生了作用。然而,Mn(IV)的溶解和Mn2 +的富集也起着重要的作用。 (C)2015 Elsevier Ltd.保留所有权利。

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