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Water-stable MOFs-based core-shell nanostructures for advanced oxidation towards environmental remediation

机译:基于水稳态的MOFS核心 - 壳纳米结构,用于对环境修复的先进氧化

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Metal organic frameworks (MOFs) find many potential applications because of their versatile physicochemical properties. Advanced oxidation is an important way for wastewater remediation to realize sustainable supply of clean water. However, due to the lack of water-stable MOFs with sufficient catalytic activity, the application of MOFs in advanced oxidation processes (AOP) for wastewater treatment is greatly hindered. In this study, by taking advantage of the rich pores of water stable MOFs, we develop a MOFs-based core (water stable MOFs)shell (NiP) structure as an efficient catalyst for peroxymonosulfate (PMS) activation in AOP. Here, water stable MIL-96 as the MOFs is synthesized by a hydrothermal method, and the core-shell structured MIL-96@NiP is facilely synthesized through electroless coating of the NiP layer. The as-prepared core-shell structure demonstrates superior performance in catalytic degradation of rhodamine B (RhB), over performing the individual MOFs and NiP parts, suggesting the appearance of synergistic effect between MOFs and NiP in the core-shell structure. Furthermore, the catalyst demonstrates four consecutive runs without losing significant catalytic activity. Temperature has a significant role in faster degradation of RhB. A plausible degradation mechanism is proposed through classical quenching tests study, and oxygen singlet is found to play imperative part in removal of RhB.
机译:金属有机框架(MOFS)由于它们多功能的物理化学特性,找到许多潜在的应用。高级氧化是废水修复实现清洁水的可持续供应的重要途径。然而,由于缺乏具有足够催化活性的水稳定的MOF,因此极大地阻碍了用于废水处理的高级氧化过程(AOP)中的MOF。在这项研究中,通过利用富含水稳定的MOF的孔,我们开发了一种基于MOF的核心(水稳定MOF)壳(NIP)结构,作为AOP中过氧键硫酸盐(PMS)活化的有效催化剂。这里,通过水热法合成水稳定MIL-96,并且通过夹持层的无电镀涂层,芯壳结构MIL-96 @辊隙。制备的核心壳结构表明,罗丹明B(RHB)的催化降解的优异性能,在进行单独的MOF和粘连部分上,表明MOF和核心壳结构中的MOF和辊隙之间的协同效应的外观。此外,催化剂在不失去显着的催化活性的情况下表现出四个连续的运行。温度在RHB的更快降解中具有重要作用。通过经典猝灭试验研究提出了一种可粘性的降解机制,发现氧单线片在去除RHB中起到势不一的部分。

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