Ketorolac removal through photoelectrocatalysis using TiO2 nanotubes in water system

被引:0
作者
Sebastián Oyarzabal Rodríguez
Luis Erick Coy-Aceves
Jesus Eduardo Daniel Morales
Jose Luis Sanchez-Salas
Carlos Alberto Martínez-Huitle
Milena Maria Ramirez-Rodrigues
Monica Cerro-Lopez
机构
[1] Chemical and Biological Sciences Department,Electrocatalysis Laboratory
[2] Universidad de Las Américas Puebla,Renewable Energies and Environmental Sustainability Research Group, Institute of Chemistry
[3] Sta. Catarina Mártir S/N,Department of Bioengineering
[4] Universidade Federale Do Río Grande Do Norte,undefined
[5] Tecnologico de Monterrey,undefined
[6] Reserva Territorial Atlixcáyotl,undefined
来源
Environmental Science and Pollution Research | 2023年 / 30卷
关键词
Titanium dioxide nanotubes; TiO; nanotubes; Ketorolac; Emerging pollutants; Degradation; Photoelectrocatalysis;
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暂无
中图分类号
学科分类号
摘要
Ketorolac, a highly persistent NSAID of environmental concern, was significantly removed from water (80% removal) through photoelectrocatalysis where titanium dioxide nanotubes prepared by Ti foil electrochemical anodization at 30 V were used as photoanodes. Fifteen milligrams per liter of ketorolac solutions in a 0.05 M Na2SO4 aqueous medium was subjected to irradiation from a 365-nm light with an intensity of 1 mWcm−2 and under an applied potential of 1.3 V (vs. Hg/Hg2SO4/sat.K2SO4) at pH 6.0. When each process (photo and electrocatalysis) was carried out separately, less than 20% drug removal was achieved as monitored through UV–vis spectrophotometry. Through scavenging experiments, direct oxidation on the photogenerated holes and oxidation by hydroxyl radical formation were found to play a key role on ketorolac’s degradation. Chemical oxygen demand (COD) analyses also showed a significant COD decreased (68%) since the initial COD value was 31.3 mg O2/L and the final COD value was 10.1 mg O2/L. A 48% mineralization was also achieved, as shown by total organic carbon (TOC) analyses. These results showed that electrodes based on titania nanotubes are a promising alternative material for simultaneous photocatalytic and electrocatalytic processes in water remediation.
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页码:118536 / 118544
页数:8
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共 125 条
[1]  
Anjanapriya S(2021)Pharmaceutical Pollution Crisis in the World: A Menace to Ecosystem Entomology and Applied Science Letters 8 77-89
[2]  
SulaimanMumtaz M(2020)Reduced graphene oxide-intercalated graphene oxide nano-hybrid for enhanced photoelectrochemical water reduction J Nanostruct Chem 10 9-18
[3]  
Mohideen MHAK(2014)Degradation of diclofenac sodium using combined processes based on hydrodynamic cavitation and heterogeneous photocatalysis Ultrason Sonochem 21 1035-1043
[4]  
Radha A(2012)Occurrence and persistence of organic emerging contaminants and priority pollutants in five sewage treatment plants of Spain: two years pilot survey monitoring Environ Pollut 164 267-273
[5]  
Sasirekha N(2020)Critical perspective on advanced treatment processes for water and wastewater: AOPs, ARPs, and AORPs Appl Sci 10 4549-181
[6]  
Sawicka B(2014)Formation and growth of PbO2 inside TiO2 nanotubes for environmental applications Appl Catal B 144 174-73
[7]  
Tamizhazhagan V(2021)Análisis de fármacos en aguas residuales de tres hospitales de la ciudad de Puebla, México Ingeniería Del Agua 25 59-16867
[8]  
Aragaw BA(2019)CdS-decorated MIL-53(Fe) microrods with enhanced visible light photocatalytic performance for the degradation of ketorolac tromethamine and mechanism insight J Phys Chem C 123 16857-421
[9]  
Bagal MV(2014)Some ozone advanced oxidation processes to improve the biological removal of selected pharmaceutical contaminants from urban wastewater J Environ Sci Health, Part A 49 410-8424
[10]  
Gogate PR(2010)Combining the benefits of homogeneous and heterogeneous catalysis with tunable solvents and nearcritical water Molecules 15 8400-1043