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首页> 外文期刊>Journal of Environmental Management >Efficient clean-up of waters contaminated with diazinon pesticide using photo-decomposition of peroxymonosulfate by ZnO decorated on a magnetic core/shell structure
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Efficient clean-up of waters contaminated with diazinon pesticide using photo-decomposition of peroxymonosulfate by ZnO decorated on a magnetic core/shell structure

机译:通过在磁核/壳结构上装饰的ZnO对过氧一硫酸盐进行光分解,可以有效地净化被二嗪农农药污染的水

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摘要

In the present study, ZnO nanoparticles were anchored on a magnetic core/shell structure (SiO2@Fe3O4) to perpetrate ZnO@SiO2@Fe3O4 and then coupled with UV light as a heterogeneous nanocatalyst for activating peroxymonosulfate (PMS) into diazinon (DZ) degradation. Several techniques like XRD (X-ray diffraction), BET (Brunaeur, Emmett and Teller), TEM (Transmission electron microscope), FESEM (Field emission-scanning electron microscope) coupled with EDS (Energy Dispersive X-ray Spectrometer), PL (photoluminescence), VSM (Vibrating Sample Magnetometer) and UV-vis diffuse reflectance spectroscopy (DRS) were applied for identification of catalyst features. A possible mechanism for PMS activation and DZ degradation was proposed in details. The effect of solution pH, various concentrations of catalyst, PMS and DZ, quenching agents, different chemical oxidants and co-existing anions was assessed as operating factors to determine the optimum conditions. PMS decomposed effectively in coupling with ZnO@SiO2@Fe3O4 and UV. At optimal conditions, over 95 and 56% of DZ and TOC were removed during 60 min reaction, respectively. The complete degradation of DZ was confirmed using its absorption peak in UV-vis spectra analysis over 60 min treatment. A wide variety of free radicals was identified during quenching tests. HO center dot and h(+) played a pivotal role in the degradation process of DZ. Decreasing the degradation efficiency in the presence of anions was as Cl- > CO32- > NO3- > PO43- > SO42- > HCO3-. A negligible amount of leaching Fe (< 0.2 mg/L) was found for ZnO@SiO2@Fe3O4, indicating that the catalyst possesses a high stability in oxidation systems. In addition, a significant potential was achieved in reusing of catalyst within five consecutive runs. In conclusion, ZnO@SiO2@Fe3O4/PMS/UV hybrid system can be utilized as a promising advanced oxidation process into efficient degradation of pesticides, thanks to easy recovery, high catalytic activity, co-production of different reactive species and high durability and recyclability potential.
机译:在本研究中,将ZnO纳米颗粒锚定在磁性核/壳结构(SiO2 @ Fe3O4)上,使ZnO @ SiO2 @ Fe3O4发生,然后与紫外光耦合作为非均相纳米催化剂,以激活过氧单硫酸盐(PMS)降解为二嗪农(DZ)降解。 。 XRD(X射线衍射),BET(Brunaeur,Emmett和Teller),TEM(透射电子显微镜),FESEM(场发射扫描电子显微镜)和EDS(能量分散X射线光谱仪),PL( ),VSM(振动样品磁力计)和UV-vis漫反射光谱法(DRS)用于鉴定催化剂特征。详细提出了PMS激活和DZ降解的可能机制。评价溶液pH,各种浓度的催化剂,PMS和DZ,猝灭剂,不同的化学氧化剂和共存阴离子的影响,作为确定最佳条件的操作因素。 PMS与ZnO @ SiO2 @ Fe3O4和紫外线耦合有效分解。在最佳条件下,反应60分钟内分别去除了95%和56%以上的DZ和TOC。在60分钟的处理过程中,DZ的吸收峰在UV-vis光谱分析中得到了证实,从而完全降解了DZ。在淬灭测试中发现了各种各样的自由基。 HO中心点和h(+)在DZ的降解过程中起着关键作用。在阴离子存在下降低降解效率为Cl-> CO32-> NO3-> PO43-> SO42-> HCO3-。 ZnO @ SiO2 @ Fe3O4的浸出铁量(<0.2 mg / L)可忽略不计,表明该催化剂在氧化系统中具有很高的稳定性。另外,在连续五次运行中,催化剂的再利用具有很大的潜力。综上所述,ZnO @ SiO2 @ Fe3O4 / PMS / UV杂化系统具有回收率高,催化活性高,不同反应物种共同生产,耐用性和可回收性高等优点,可作为有效降解农药的先进氧化工艺。潜在。

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