Institute of Research and Development, Duy Tan University, Da Nang, 550000, Vietnam.
Faculty of Environmental and Chemical Engineering, Duy Tan University, Da Nang, 550000, Vietnam.
Sci Rep. 2021 Jan 13;11(1):964. doi: 10.1038/s41598-020-80200-9.
The present study has focused on the degradation of phenazopyridine (PhP) as an emerging contaminant through catalytic ozonation by novel plasma treated natural limonite (FeOOH·xHO, NL) under argon atmosphere (PTL/Ar). The physical and chemical characteristics of samples were evaluated with different analyses. The obtained results demonstrated higher surface area for PTL/Ar and negligible change in crystal structure, compared to NL. It was found that the synergistic effect between ozone and PTL/Ar nanocatalyst was led to highest PhP degradation efficiency. The kinetic study confirmed the pseudo-first-order reaction for the PhP degradation processes included adsorption, peroxone and ozonation, catalytic ozonation with NL and PTL/Ar. Long term application (6 cycles) confirmed the high stability of the PTL/Ar. Moreover, different organic and inorganic salts as well as the dissolved ozone concentration demonstrated the predominant role of hydroxyl radicals and superoxide radicals in PhP degradation by catalytic Ozonation using PTL/Ar. The main produced intermediates during PhP oxidation by PTL/Ar catalytic ozonation were identified using LC-(+ESI)-MS technique. Finally, the negligible iron leaching, higher mineralization rate, lower electrical energy consumption and excellent catalytic activity of PTL/Ar samples demonstrate the superior application of non-thermal plasma for treatment of NL.
本研究聚焦于通过新型等离子体处理天然针铁矿(FeOOH·xHO,NL)在氩气气氛下(PTL/Ar)的催化臭氧化作用来降解作为新兴污染物的 phenazopyridine(PhP)。采用不同的分析方法对样品的物理化学特性进行了评估。结果表明,与 NL 相比,PTL/Ar 的比表面积更高,晶体结构几乎没有变化。结果表明,臭氧与 PTL/Ar 纳米催化剂之间的协同作用导致了 PhP 降解效率的最高。动力学研究证实了 PhP 降解过程包括吸附、过氧单硫酸盐和臭氧、NL 和 PTL/Ar 的催化臭氧的准一级反应。长期应用(6 个循环)证实了 PTL/Ar 的高稳定性。此外,不同的有机和无机盐以及溶解臭氧浓度表明,在使用 PTL/Ar 进行催化臭氧化时,羟基自由基和超氧自由基在 PhP 降解中起主要作用。使用 LC-(+ESI)-MS 技术鉴定了 PTL/Ar 催化臭氧化过程中 PhP 氧化的主要中间产物。最后,PTL/Ar 样品的铁浸出率低、矿化率高、电能消耗低、催化活性高,证明了非热等离子体处理 NL 的优越应用。