Evaluation of Kinetic Pseudo-Order in the Photocatalytic Degradation of Ofloxacin

被引:41
作者
Rytwo, Giora [1 ,2 ,3 ]
Zelkind, Arye Lev [1 ,2 ,3 ]
机构
[1] Tel Hai Coll, Environm Sci Dept, IL-1220800 Upper Galilee, Israel
[2] Tel Hai Coll, Water Sci Dept, IL-1220800 Upper Galilee, Israel
[3] MIGAL Galilee Res Inst, Environm Phys Chem Lab, IL-1101602 Kiryat Shmona, Israel
关键词
ofloxacin; rate-law; pseudo-order; half-life time; homogeneous catalysis; heterogeneous catalysis; photodegradation; ADVANCED OXIDATION PROCESSES; WATER-TREATMENT; MINERALIZATION;
D O I
10.3390/catal12010024
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Ofloxacin is a highly efficient and widely used antibiotic drug. It is classified as a refractory pollutant due to its poor biodegradability. Consequently, it is commonly found in water sources, requiring efficient methods for its removal. Advanced oxidation processes (AOPs) offer efficient alternatives since those yield complete degradation not achieved in adsorption or membrane processes. Previous studies suggest ofloxacin degradation follows a pseudo-first or -second order processes, whereas for full removal of refractory pollutants-lower pseudo-orders are required. Monitoring the actual "pseudo-order" degradation kinetics of ofloxacin is needed to evaluate any proposed AOP process. This study presents a simple procedure to evaluate pseudo-orders of AOPs. Photolysis of 20 mu M ofloxacin solutions follow pseudo-zero order kinetics, with half-life times (t(1/2)) of approx. 60 min. TiO2 heterogenous catalysts have been shown to have no influence at low concentrations (0.2 mg L-1), but a significant reduction of half-life time (t(1/2) = 20 min) and increase in pseudo-order (0.8) is measured at 2.0 mg L-1. Similar results are obtained with homogenous catalysis by 2.0 mg L-1 H2O2. The combination of H2O2 and TiO2 catalysts shows additional reduction in half-time life with increase in the pseudo-order to 1.2. The conclusions are (1) heterogenous and homogenous photocatalysis can effectively degrade ofloxacin, (2) combined photocatalysis yields higher pseudo-order, being less prone to achieve full removal, and (3) analysis of specific pseudo-orders in AOPs of refractory pollutants helps to further elucidate the efficiency of the processes.
引用
收藏
页数:11
相关论文
共 34 条
  • [1] Photocatalytic activity improvement and application of UV-TiO2 photocatalysis in textile wastewater treatment: A review
    Al-Mamun, M. R.
    Kader, S.
    Islam, M. S.
    Khan, M. Z. H.
    [J]. JOURNAL OF ENVIRONMENTAL CHEMICAL ENGINEERING, 2019, 7 (05):
  • [2] [Anonymous], 2014, Chem. Terminol, P1670, DOI [10.1351/goldbook.I03352, DOI 10.1351/GOLDBOOK.I03352]
  • [3] Atkins P., 2014, Physical Chemistry
  • [4] Bagshaw C., 2013, ENCY BIOPHYSICS, P1807
  • [5] BARNSTON AG, 1992, WEATHER FORECAST, V7, P699, DOI 10.1175/1520-0434(1992)007<0699:CATCRA>2.0.CO
  • [6] 2
  • [7] Batakliev Todor, 2014, Interdiscip Toxicol, V7, P47, DOI 10.2478/intox-2014-0008
  • [8] Tackling antibiotic resistance: the environmental framework
    Berendonk, Thomas U.
    Manaia, Celia M.
    Merlin, Christophe
    Fatta-Kassinos, Despo
    Cytryn, Eddie
    Walsh, Fiona
    Buergmann, Helmut
    Sorum, Henning
    Norstrom, Madelaine
    Pons, Marie-Noelle
    Kreuzinger, Norbert
    Huovinen, Pentti
    Stefani, Stefania
    Schwartz, Thomas
    Kisand, Veljo
    Baquero, Fernando
    Luis Martinez, Jose
    [J]. NATURE REVIEWS MICROBIOLOGY, 2015, 13 (05) : 310 - 317
  • [9] Photocatalytic degradation of emerging antibiotic pollutants in waters by TiO2/Hydroxyapatite nanocomposite materials
    Bouyarmane, H.
    El Bekkali, C.
    Labrag, J.
    Es-saidi, I.
    Bouhnik, O.
    Abdelmoumen, H.
    Laghzizil, A.
    Nunzi, J-M
    Robert, D.
    [J]. SURFACES AND INTERFACES, 2021, 24
  • [10] CuFe2O4 supported on montmorillonite to activate peroxymonosulfate for efficient ofloxacin degradation
    Cao, Xiao-qiang
    Xiao, Fei
    Lyu, Zhi-wen
    Xie, Xiao-yu
    Zhang, Zhi-xing
    Dong, Xing
    Wang, Jun-xiang
    Lyu, Xian-jun
    Zhang, Yi-zhen
    Liang, Yue
    [J]. JOURNAL OF WATER PROCESS ENGINEERING, 2021, 44