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首页> 外文期刊>Journal of Colloid and Interface Science >Novel zero-valent Co-Fe encapsulated in nitrogen-doped porous carbon nanocomposites derived from CoFe2O4@ZIF-67 for boosting 4-chlorophenol removal via coupling peroxymonosulfate
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Novel zero-valent Co-Fe encapsulated in nitrogen-doped porous carbon nanocomposites derived from CoFe2O4@ZIF-67 for boosting 4-chlorophenol removal via coupling peroxymonosulfate

机译:新型零价二氧化碳封装在衍生自CoFe2O4 ZIF-67的氮掺杂多孔碳纳米复合材料中,用于通过联氧中硫酸盐升温4-氯蛋白酚去除

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摘要

Environment-friendly treatment process relies on the robustness, durability, and performance of catalysts to drive the development of cutting-edge sustainable technologies for the elimination of refractory contaminants. Herein, nanocomposites prepared from zero-valent Co-Fe encapsulated in nitrogencontaining carbon (N-C) nanoparticles (CFNC-30 NPs) derived from CoFe2O4@zeolitic imidazolate frameworks-67 were successfully prepared through pyrolysis integrated with self-reduction, and further utilized as the novel catalysts to degrade 4-chlorophenol (4-CP) by coupling with peroxymonosulfate (PMS). Three optimized parameters (CFNC-30 NPs dosage of 0.089 g L-1, PMS concentration of 1.1 g L-1, and initial pH of 6.6) were obtained via response surface methodology by using the BoxBehnken design model. Benefiting from the larger specific surface area, pore-volume, and existence of abundant hydroxyl groups, CFNC-30 NPs with more available active sites exhibited an excellent efficiency of 99.1% toward catalytic degradation of 4-CP within 30 min under the optimal conditions. Moreover, CFNC-30 NPs demonstrated durability and long-term stability even during the five consecutive cycle tests without a significant drop in its catalytic performance. The scavenging experiments and electron paramagnetic resonance technologies revealed that non-radical singlet oxygen (O-1(2)), sulfate radicals (SO4 center dot), and hydroxyl radicals (HO center dot) were involved as active species in the CFNC-30/PMS system, contributing 46.8, 35.6, and 17.6% efficiency toward 4-CP degradation, respectively. Besides, the reaction mechanism on the CFNC-30 NPs and degradation pathways toward 4-CP were speculated under PMS activation. The results indicated that the synergistic effects between zero-valent Co-Fe and N-C structures not only significantly boosted the removal efficiency and long-term stability of CFNC-30 NPs, but also facilitated the redox cycles of Co3+/Co2+ and Fe3+/Fe2+. This proof-of-concept approach to develop such high-efficient zero-valent Co-Fe encapsulated in N-C structures opens up novel avenues for wastewater decontamination via PMS activation. (C) 2020 Elsevier Inc. All rights reserved.
机译:环境友好的处理过程依赖于催化剂的稳健性,耐用性和性能,以推动消除难治性污染物的尖端可持续技术的开发。这里,通过与自我减少一体化成功制备由衍生自CoFe 2 O 4的氮歧视碳(NC)纳米颗粒(CFNC-30NP)纳米颗粒(CFNC-30NP)中的零价二颗粒(CFNC-30NP)纳米颗粒(CFNC-30NP)纳米颗粒(CFNC-30NP)中的纳米复合材料进行制备,并进一步使用通过与过氧键硫酸盐(PMS)偶联来降解4-氯苯酚(4-CP)的新型催化剂。通过使用BoxBehnken设计模型,通过响应表面方法获得三种优化的参数(CFNC-30NPS剂量为0.089g L-1,PMS浓度为1.1g L-1和6.6)。受益于较大的比表面积,孔体积和丰富的羟基存在,具有更可用活性位点的CFNC-30NPS在最佳条件下在30分钟内呈现出4-CP的催化降解的优异效率为99.1%。此外,即使在五个连续的循环试验中,CFNC-30 NPS也证明了耐久性和长期稳定性,其催化性能下降显着下降。清除实验和电子顺磁共振技术揭示了非自由基单氧(O-1(2)),硫酸盐自由基(SO4中心点)和羟基自由基(HO中心点)作为CFNC-30中的活性物种涉及/ PMS系统,贡献46.8,35.6和17.6%的效率,效率分别升压4-C次数。此外,在PMS活化下推测CFNC-30NPS上的反应机制和朝向4-CP的降解途径。结果表明,零价CO-FE和N-C结构之间的协同效应不仅显着提高了CFNC-30 NP的去除效率和长期稳定性,而且还促进了CO3 + / CO2 +和Fe3 + / Fe2 +的氧化还原循环。这种概念验证方法,用于开发在N-C结构中封装的这种高效零价CO-FE的封装开辟了通过PMS激活的废水去污的新颖途径。 (c)2020 Elsevier Inc.保留所有权利。

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