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Enhanced Hg~0 removal via α-MnO_2 anchored to MIL-96(Al)

机译:通过锚定向MIL-96(AL),通过α-MnO_2进行增强的Hg〜0去除

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Metal-organic frameworks (MOFs) are porous materials with highly ordered structures, and find application in various fields such as gas transportation and catalysis. In the present study, Al-based MOFs (MIL-96(Al)) were chosen as supports for alpha-MnO2 because of their large specific surface area, excellent thermal stability, and environmental friendliness. Different loadings of alpha-MnO2 (5%, 10%, and 15%) were anchored to MIL-96(Al) via a one-step process of hydrothermal synthesis, and all the samples were characterized by XRD, ICP-AES, SEM, TEM, and XPS. The results show positive synergistic effects between the reactants and the support. Structurally, alpha-MnO2 is evenly dispersed on the surface of MIL-96(Al). Unlike common supports such as Al2O3 and SiO2, MIL-96(Al) is not static during the process of loading. The reactant KMnO4 modifies the surface of the support by destroying its organic ligands and forming erosion-induced holes, which help improve the dispersion of alpha-MnO2. In terms of mercury removal, MIL-96(Al) exposes more active sites of alpha-MnO2 by even dispersion of the latter, further enhancing the chemical adsorption and catalytic oxidation of alpha-MnO2. The mercury removal efficiency of the sample MM-15 is 1.55 times that of pure alpha-MnO2. XPS analysis was performed to determine the mechanism of Hg-0 removal by alpha-MnO2-MIL-96(Al), and the capture agent was determined to be a combination of chemical adsorbent and catalyst. The Hg-0 is oxidized to HgO by alpha-MnO2-MIL-96(Al), while Mn4+ is reduced to Mn3+, and alpha-MnO2 can also catalyze the reaction between O-2 and Hg-0. We believe that our research can introduce new avenues for effective understanding of the removal of heavy metals that threaten human health.
机译:金属 - 有机框架(MOF)是具有高度有序结构的多孔材料,并在各种领域中寻找诸如天然气运输和催化的应用。在本研究中,选择基于Al的MOF(MIL-96(Al))作为α-MnO2的支持,因为它们的比表面积大,热稳定性优异,环境友好性。通过水热合成的一步方法将α-MnO2(5%,10%和15%)的不同载荷锚定到MIL-96(A1),并且通过XRD,ICP-AES,SEM表征所有样品的所有样品,tem和xps。结果表明反应物与载体之间的阳性协同效应。在结构上,α-MnO2均匀地分散在MIL-96(Al)的表面上。与诸如Al2O3和SiO2之类的共同支持不同,MIL-96(Al)在装载过程中不是静态。反应物KMnO4通过破坏其有机配体并形成腐蚀诱导的孔来改变载体的表面,这有助于改善α-MnO2的分散。在汞去除方面,MIL-96(A1)通过均匀的后者的分散地暴露更多的α-MnO 2的活性位点,进一步增强了α-MnO 2的化学吸附和催化氧化。样品MM-15的汞去除效率为纯α-MNO2的1.55倍。进行XPS分析以确定通过α-MnO2-MIL-96(A1)的Hg-0除去的机制,并且测定捕获剂是化学吸附剂和催化剂的组合。通过α-MnO2-MIL-96(A1)将HG-0氧化为HgO,而MN4 +降低至Mn3 +,并且α-MnO 2还可以催化O-2和Hg-0之间的反应。我们认为,我们的研究可以引入新的途径,以有效地了解威胁人类健康的重金属的清除。

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