Co3O4/Bi2Fe4O9@蜂窝状堇青石整体式催化剂活化过一硫酸盐降解苯酚废水

Degradation of Phenol Wastewater by Co3O4/Bi2Fe4O9@honeycomb cordierite monolithic catalyst via PMS activation

  • 摘要: 通过共沉淀法和煅烧法制备复合材料20%Co3O4/Bi2Fe4O9(20%Co/BFO),随后利用浸渍法将20%Co/BFO负载至蜂窝状堇青石载体(HC)表面制备20%Co/BFO@HC整体式催化剂。通过XRD、FTIR以及SEM等表征手段,证实20%Co/BFO及20%Co/BFO@HC已成功制备。随后,构建基于20%Co/BFO@HC的连续流整体式反应器,并用于活化过一硫酸盐(PMS)降解苯酚废水。接着,系统探究20%Co/BFO负载量、PMS浓度、苯酚浓度、苯酚废水初始pH值以废水流量对整体式反应器降解苯酚的影响。在反应器最优工况(20%Co/BFO负载量为95.7 mg;PMS浓度为1.25 mmol/L;苯酚浓度为40 mg/L;pH为6.39;流量为1 L/min)下,苯酚降解率高达96.95%。随后,利用整体式反应器进行循环实验,经历五次苯酚降解实验后,基于20%Co/BFO@HC-PMS体系的整体式反应器对苯酚废水的降解率依然高达93.84%,这表明20%Co/BFO@HC具有优异的稳定性。另外,通过牺牲剂实验证实苯酚降解过程中存在SO4•−OH、O2•−1O2四种活性物种,且它们氧化降解苯酚的贡献顺序为:O2•−>1O2>OH>SO4•−。最后对催化反应前后苯酚废水的COD值进行测定,计算可得COD去除率为86.61%,表明基于20%Co/BFO@HC-PMS体系的整体式反应器对苯酚废水具有优异的矿化效率。

     

    Abstract: The composite 20%Co3O4/Bi2Fe4O9 (20%Co/BFO) was prepared via a combination of coprecipitation and calcination methods. Subsequently, 20%Co/BFO was immobilized onto the surface of honeycomb cordierite (HC) support through an impregnation approach to fabricate the 20%Co/BFO@HC monolithic catalyst. Characterization including XRD, FTIR, and SEM confirmed the successful preparation of 20%Co/BFO and 20%Co/BFO@HC. A monolithic reactor based on 20%Co/BFO@HC was then constructed and applied for the catalytic activation of peroxymonosulfate (PMS) to degrade phenol wastewater. The effects of variables including 20%Co/BFO loading, PMS dosage, initial phenol concentration, initial pH, and wastewater flow on the degradation of phenol in the monolithic reactor were systematically investigated. Under the optimal operating conditions of the reactor (20%Co/BFO loading: 95.7 mg; PMS concentration: 1.25 mmol/L; phenol concentration: 40 mg/L; pH: 6.39; wastewater flow: 1 L/min), the phenol degradation efficiency reaches 96.95%. Cyclic experiments were also conducted in the monolithic reactor. After five consecutive degradation cycles, the phenol removal efficiency of the 20%Co/BFO@HC-PMS system remained as high as 93.84%, demonstrating the excellent stability of the prepared 20%Co/BFO@HC. In addition, radical quenching experiments verified the presence of 4 reactive oxygen species (ROS) during phenol degradation, namely SO4•−OH、O2•− and 1O2. The contribution of these ROS to the oxidative degradation of phenol was ranked in the descending order of O2•−>1O2>OH>SO4•−. Finally, the chemical oxygen demand (COD) of the phenol wastewater before and after the catalytic reaction was measured. The calculated COD removal efficiency reached 86.61%, indicating that the monolithic reactor based on the 20%Co/BFO@HC-PMS system exhibits superior mineralization for phenol wastewater.

     

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