4.7 Article

Hydrodynamic cavitation-enhanced heterogeneous activation of persulfate for tetracycline degradation: Synergistic effects, degradation mechanism and pathways

Journal

CHEMICAL ENGINEERING JOURNAL
Volume 431, Issue -, Pages -

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.cej.2021.134238

Keywords

Hydrodynamic cavitation; Fe-0; Persulfate; Mass transfer; Tetracycline

Funding

  1. Zhejiang Provincial Natural Science Foundation of China [LY19B070003, LY17B050001]
  2. National Natural Science Foundation of China [22176175]
  3. Zhejiang University Student Science and Technology Innovation Plan and New Seedling Talent Plan Project [2020R408006]
  4. Aarhus University Centre for Water Technology (AU-WATEC) Start-Up Fund from Grundfos
  5. Novo Nordisk Fonden [NNF20OC0064799]
  6. Aarhus University Research Foundation Starting Grant [AUFF-E-2019-7-28]

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This study proposes using hydrodynamic cavitation (HC) to enhance mass transfer and oxidant utilization in zero-valent iron (Fe-0) activated persulfate (PS) system. The results show that HC increases the reactivity of Fe-0 and improves the activation of PS. It is also found that the degradation of pollutants is more effective in acidic conditions. The mechanism of catalyst regeneration by HC is investigated using SEM, TEM, and BET analysis. This study provides valuable insights into the application of sulfate radical (SO4 center dot-) based advanced oxidation technologies (AOTs) in wastewater treatment.
Mass transfer and oxidant utilization are perhaps two of the most critical issues in sulfate radical (SO4 center dot-) based advanced oxidation technologies (AOTs) and their scaled-up implementation. In this study, we propose using hydrodynamic cavitation (HC), considered a green, effective method, to promote both mass transfer and oxidant utilization in zero-valent iron (Fe-0) activated persulfate (PS) system. Whilst the BET surface area of Fe-0 was increased by 8 times after HC treatment, concentration of Fe2+ derived from Fe-0 oxidation is greatly increased for effective PS activation. The reappearance of Fe-0 and Fe2+ after cavitation ensured a good reusability of the catalyst. Likewise, the impact of pH revealed that TC adsorption on catalyst at acidic pH favored its degradation compared with that at higher pH. With respect to oxidant utilization, it is observed that PS even at a high dosage (2.8 mM) was completed converted within 30 min in the HC-Fe-0/PS system. According to SEM, TEM, and BET analysis, we conclude that the microjets induced by cavitation bubbles or direct abrasion by HC agitation have contributed to the removal of hydroxide/oxide layers on the Fe-0 surface, thus reactivating its catalytic activity. Given these reasons, we observed up to 97.80% removal of Tetracycline (TC), the model pollutant, with a synergistic coefficient as high as 2.62. After confirming SO4 center dot- as the most dominant reactive species, five degradation pathways of TC were proposed given the intermediate evidence from LC-MS/MS analysis and density functional theory (DFT) calculations. Results from this study could provide new insights into the role of HC on PS activation and shed light on the potential implementation of the SO4 center dot--based AOTs for scaled-up wastewater treatments.

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