[1] Zúiga-Benítez H,Aristizbal-Ciro C,Peuela G A.Photodegradation of the endocrine-disrupting chemicals benzophenone-3 and methylparaben using Fenton reagent:optimization of factors and mineralization/biodegradability studies[J].Journal of the Taiwan Institute of Chemical Engineers,2016,59(1):380-388.
[2] Barndk H,Hermosilla D,Han C,et al.Degradation of 1,4-dioxane from industrial wastewater by solar photocatalysis using immobilized NF-TiO2 composite with monodisperse TiO2 nanoparticle[J].Applied Catalysis B:Environmental,2016,180(1):44-52.
[3] Wang Y,Zhou L,Duan X,et al.Photochemical degradation of phenol solutions on Co3O4 nanorods with sulfate radicals[J].Catalysis Today,2015,258(2):576-584.
[4] Zhao Y J,Zhang X W,Wang C Z.The synthesis of hierarchical nanostructured MoS2/graphene composites with enhanced visible-light photo-degradation property[J].Applied Surface Science,2017,412(3):207-213.
[5] Juang R S,Chen C H.Comparative study on photocatalytic degradation of methomyl and parathion over UV-irradiated TiO2 particles in aqueous solutions[J].Journal of the Taiwan Institute of Chemical Engineers,2014,45(3):989-995.
[6] Mano T,Nishimoto S,Kameshima Y,et al.Water treatment efficacy of various metal oxide semiconductors for photocatalytic ozonation under UV and visible light irradiation[J].Chemical Engineering Journal,2015,264(4):221-229.
[7] Mahdizadeh F,Aber S,Karimi A.Synthesis of nano zinc oxide on granular porous scoria:application for photocatalytic removal of pharmaceutical and textile pollutants from synthetic and real wastewaters[J].Journal of the Taiwan Institute of Chemical Engineers,2015,49(4):212-219.
[8] Fu X Y,Zhang Y W,Cao P F,et al.Radiation synthesis of CdS/reduced graphene oxide nanocomposites for visible-light-driven photocatalytic degradation of organic contaminant[J].Radiation Physics and Chemistry,2016,123(6):79-86.
[9] Entradas T J,Cabrita J F,Barrocas B,et al.Synthesis of titanate nanofibers co-sensitized with ZnS and Bi2S3 nanocrystallites and their application on pollutants removal[J].Materials Research Bulletin,2015,72(12):20-28.
[10] Jorfi S,Barzegar G,Ahmadi M,et al.nhanced coagulation-photocatalytic treatment of Acid red 73 dye and real textile wastewater using UVA/synthesized MgO nanoparticles[J].Journal of Environmental Management,2016,177(7):111-118.
[11] Akhundi A,Habibi-Yangjeh A.Ternary magnetic g-C3N4/Fe3O4/AgI nanocomposites:novel recyclable photocatalysts with enhanced activity in degradation of different pollutants under visible light[J].Materials Chemistry and Physics,2016,174(5):59-69.
[12] Panthi G,Barakat N A M,Park M,et al.Fabrication of PdS/ZnS NPs doped PVAc hybrid electrospun nanofibers:effective and reusable catalyst for dye photodegradation[J].Journal of Industrial and Engineering Chemistry,2015,21(1):298-302.
[13] Gatto S,Sansotera M,Persico F,et al.Surface fluorination on TiO2 catalyst induced by photodegradation of perfluorooctanoic acid[J].Catalysis Today,2015,241(1):8-14.
[14] Rao Y F,Chu W,Wang Y R.Photocatalytic oxidation of carbamazepine in triclinic-WO3 suspension:role of alcohol and sulfate radicals in the degradation pathway[J].Applied Catalysis A:General,2013,468(11):240-249.
[15] Khan M A,Nadeem M A,Idriss H.Ferroelectric polarization effect on surface chemistry and photo-catalytic activity:a review[J].Surface Science Reports,2016,7(1):1-31.
[16] Bhukal S,Bansal S,Singhal S.Magnetic Mn substituted cobalt zinc ferrite systems:structural,electrical and magnetic properties and their role in photo-catalytic degradation of methyl orange azo dye[J].Physica B:Condensed Matter,2014,445(14):48-55.
[17] Xiao J,Xie Y,Cao H.Organic pollutants removal in wastewater by heterogeneous photocatalytic ozonation[J].Chemosphere,2015,121(4):1-17.
[18] Cybula A,Klein M,Zaleska A.Methane formation over TiO2-based photocatalysts:reaction pathways[J].Applied Catalysis B:Environmental,2015,164(3):433-442.
[19] Arati J B,Parag R G.Degradation of 4-chloro 2-aminophenol using combined strategies based on ultrasound,photolysis and ozone[J].Ultrasonics Sonochemistry,2016,28(1):90-99.
[20] Monteagudo J M,Durn A,San Martín I,et al.Ultrasound-assisted homogeneous photocatalytic degradation of reactive blue 4 in aqueous solution[J].Applied Catalysis B:Environmental,2014,152-153(6):59-67.
[21] Sia T H,Dai S,Jin B,et al.Hybridising nitrogen doped titania with kaolinite:a feasible catalyst for a semi-continuous photo-degradation reactor system[J].Chemical Engineering Journal,2015,279(11):939-947.
[22] Sarkar S,Chakraborty S,Bhattacharjee C.Photocatalytic degradation of pharmaceutical wastes by alginate supported TiO2 nanoparticles in packed bed photo reactor (PBPR)[J].Ecotoxicology and Environmental Safety,2015,121(3):263-270.
[23] Sharma R,Singhal S.Structural,magnetic and electrical properties of zinc doped nickel ferrite and their application in photo catalytic degradation of methylene blue[J].Physica B:Condensed Matter,2013,414(7):83-90.
[24] Juan C C,Ouyang W,Ojeda M,et al.Mild ultrasound-assisted synthesis of TiO2 supported on magnetic nanocomposites for selective photo-oxidation of benzyl alcohol[J].Applied Catalysis B:Environmental,2016,183(4):107-112.
[25] Soltani T,Lee B.Novel and facile synthesis of Ba-doped BiFeO3 nanoparticles and enhancement of their magnetic and photocatalytic activities for complete degradation of benzene in aqueous solution[J].Journal of Hazardous Materials,2016,316(15):122-133.
[26] Ocampo-Pérez R,Snchez-Polo M,Rivera-Utrill J,et al.Enhancement of the catalytic activity of TiO2 by using activated carbon in the photocatalytic degradation of cytarabine[J].Applied Catalysis B:Environmental,2011,104(1-2):177-184.
[27] Quiones D H,Rey A,lvarez P M,et al.Enhanced activity and reusability of TiO2 loaded magnetic activated carbon for solar photocatalytic ozonation[J].Applied Catalysis B:Environmental,2014,144(1):96-106.
[28] Wang S H,Zhou S Q.Titania deposited on soft magnetic activated carbon as a magnetically separable photocatalyst with enhanced activity[J].Applied Surface Science,2010,256(21):6191-6198.
[29] Ao Y H,Xu J J,Fu D G,et al.A novel magnetically separable composite photocatalyst:titania-coated magnetic activated carbon[J].Separation and Purification Technology,2008,61(3):436-441.
[30] Yang C W,Wang D,Tang Q.The synthesis of NdFeB magnetic activated carbon and its application in degradation of azo dye methyl orange by Fenton-like process[J].Journal of the Taiwan Institute of Chemical Engineers,2014,45(5):2584-2589.
[31] 陈寒玉.磁悬浮型硫氮共掺杂二氧化钛光催化剂降解甲基橙的研究[J].应用化工,2015,44(1):37-40.
[32] 戴友芝,余铁萍,龚敏,等.一种可磁分离的复合光催化剂及其制备方法和应用:中国,CN 103071502A[P].2013-05-01.
[33] 刘洋.TiO2微球与其磁性复合材料的结构调控及光催化性能研究[D].哈尔滨:黑龙江大学,2015.
[34] Bianchi C L,Gatto S,Pirola C,et al.Photocatalytic degradation of acetone,acetaldehyde and toluene in gas-phase:comparison between nano and micro-sized TiO2[J].Applied Catalysis B:Environmental,2014,146(3):123-130.
[35] 程涛,汪恂,朱雷,等.ZnO纳米材料的制备及其光催化性能研究[J].工业安全与环保,2016,42(5):44-47.
[36] Li D,Jia J L,Zhang Y H,et al.Preparation and characterization of nano-graphite/TiO2 composite photoelectrode for photoelectrocatalytic degradation of hazardous pollutant[J].Journal of Hazardous Materials,2016,315(15):1-10.
[37] Yuan C,Hung C H,Li H W,et al.Photodegradation of ibuprofen by TiO2 co-doping with urea and fuctionalized CNT irradiated with visible light-effect of doping content and pH[J].Chemosphere,2016,155(14):471-478.
[38] 孙洋洋.磁性氧化石墨烯/TiO2复合光催化剂的制备及其光催化降解染料废水的研究[D].西安:长安大学,2015.
[39] Mishra P M,Naik G K,Nayak A,et al.Facile synthesis of nano-structured magnetite in presence of natural surfactant for enhanced photocatalytic activity for water decomposition and Cr(Ⅵ) reduction[J].Chemical Engineering Journal,2016,299(17):227-235.
[40] 尤玉静,卢格斯特,岑立,等.磁性碳纳米管基催化剂TiO2/CNTs光降解氨比西林抗生素水溶液的研究[J].应用化工,2012,41(12):2180-2182.
基金资助
吉林省科技厅自然科学基金项目(20140101215JC);吉林省科技厅重点科技攻关项目(20150204049SF);吉林省科技厅自然科学基金项目(20150520079JH);工业生态与环境工程教育部重点实验室开放基金(KLIEEE-13-07)