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Heterogeneous Fenton-like degradation of tetracyclines using porous magnetic chitosan microspheres as an efficient catalyst compared with two preparation methods

机译:使用多孔磁性壳聚糖微球作为高效催化剂的四环素的异质芬顿般的脱落,与两种制备方法相比

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The construction of heterogeneous Fenton-like catalyst with high efficiency is crucial for wastewater treatment. In this study, magnetite nanoparticles were successfully embedded into chitosan beads to form a porous structure (Fe3O4-Cs) by in-situ or two-step method, and it was put forward as a kind of Fenton-like catalyst to degrade tetracyclines for the first time. SEM, TEM, XRD, FT-IR, XPS, TG and BET technologies were used to characterize its properties. After comparing the tetracycline hydrochloride (TC) degradation efficiencies of two prepared beads, the in-situ method was selected for subsequent studies. The influential factors of TC degradation efficiency were investigated, including iron content, pH value, the amount of H2O2, reaction temperature, catalyst dosage and initial TC concentration. The results showed that under the optimal conditions, about 96.0% of TC (48.09 mg/L) and 68.3% of total organic carbon (TOC) were degraded within 20 min and 120 min, respectively. The degradation efficiencies for the other two tetracyclines: oxytetracycline (OTC) and doxycycline hyclate (DOTC), have been explored as well. And the degradation process followed pseudo first order kinetic equation. In addition, these Fe3O4-Cs beads with saturated magnetization could be easily reused for 6 cycles without significantly reducing catalytic activity. High degradation performance of beads was attributed to the stable porous structure, abundant active sites and possible synergistic effects between two components, which promoted the formation of hydroxyl radicals (HO center dot) for TC degradation. The possible reaction pathways and mechanism on TC degradation were discussed technically. In short, these results indicated that macroscopic Fe3O4-Cs beads (3-4 mm) with high efficiency, excellent stability and reusability exhibited a superior Fenton-like process on the removal of tetracyclines for future application.
机译:具有高效率的非均相芬顿催化剂的构建对废水处理至关重要。在该研究中,通过原位或两步法成功地嵌入壳聚糖珠粒中以形成多孔结构(Fe3O4-CS),并作为一种芬顿类催化剂,以降解四环素第一次。 SEM,TEM,XRD,FT-IR,XPS,TG和BET技术用于表征其属性。在比较两种制备珠子的四环素盐酸盐(TC)降解效率后,选择原位方法进行后续研究。研究了TC降解效率的影响因素,包括铁含量,pH值,H 2 O 2,反应温度,催化剂剂量和初始TC浓度。结果表明,在最佳条件下,约96.0%的TC(48.09mg / L)和总有机碳(TOC)的68.3%分别在20分钟内降解,120分钟。还探讨了另外两种四环素的降解效率:催鱼素(OXCOCECLINE(OTC)和十烷酸盐杂环杂环(DOTC)。和劣化过程跟踪伪第一阶动力学方程。另外,这些具有饱和磁化的Fe3O4-CS珠粒可以容易地重复使用6个循环,而不会显着降低催化活性。珠子的高降解性能归因于稳定的多孔结构,丰富的活性位点和两种组分之间可能的协同效应,其促进了羟基自由基(Ho中心点)进行TC降解的形成。技术上讨论了可能的反应途径和TC降解的机制。简而言之,这些结果表明,具有高效率,优异稳定性和可重用性的宏观Fe3O4-CS珠子(3-4mm)表现出优异的芬顿类方法,用于去除Tetracyclines以供未来的应用。

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