[1] |
EVGENIDOU E N, KONASTANTINOUI K, LAMBROPOULOU D A. et.al. Occurrence and removal of transformation products of PPCPs and illicit drugs in wastewaters:A review[J]. Science of the Total Environment, 2015, 505:905-926.
|
[2] |
BARCELO D, PETROVIC M. Pharmaceuticals and personal care products (PPCPs) in the environment[J]. Analytical and Bioanalytical Chemistry, 2007, 387(4):1141-1142.
|
[3] |
刘晓晖, 董文平, 乔光明,等. 水环境中药品和个人护理品的迁移转化转化、毒性效应及其风险评估[J]. 科技导报, 2015, 33(16):56-60.
LIU X H, DONG W P, QIAO G M, et.al. Transport-transformation, toxic effect and risk assessment of pharmaceuticals and personal care products in water[J]. Science Technology Review, 2015, 33(16):56-60(in Chinese).
|
[4] |
HEBERER T. Tracking persistent pharmaceutical residues from municipal sewage to drinking water[J]. Journal of Hydrology, 2002, 266(3-4):175-189.
|
[5] |
陈平, 刘国光, 王枫亮, 等. UV降解水溶液中吲哚美辛的动力学研究[J]. 环境科学学报, 2016, 36(6):2043-2049.
CHEN P,LIU G G, WANG F L, et. al. Photodegradation kinetics of indometacin by UV radiation in aqueous solution[J]. Acta Scientiae Circumstantiae, 2016, 36(6):2043-2049(in Chinese).
|
[6] |
RADJENOVIC J, PETROVIC M, BARCELO D.et.al. Fate and distribution of pharmaceuticals in wastewater and sewage sludge of the conventional activated sludge (CAS) and advanced membrane bioreactor (MBR) treatment[J]. Water Research, 2009, 43(3):831-841.
|
[7] |
BASHA S, KEANE D, MORRISSEY A, et al. Studies on the adsorption and kinetics of photodegradation of pharmaceutical compound, indomethacin using novel photocatalytic Adsorbents (IPCAs)[J]. Industrial & Engineering Chemistry Research, 2010, 49(22):584-595.
|
[8] |
陈平, 王枫亮, 苏海英,等. 水体中二氧化钛(P25)光催化降解甲芬那酸的机理[J]. 环境化学, 2016, 35(8):1627-1635.
CHEN P, WANG F L, SU H Y, et.al. Photo-catalytical degradation of mefenamic acid by TiO2 (P25) in aqueous solution[J]. Environmental Chemistry, 2016, 35(8):1627-1635(in Chinese).
|
[9] |
ZIYLANYAVAS A, INCE N H. Enhanced photo-degradation of paracetamol on n-platinum-loaded TiO2:The effect of ultrasound and OH/hole scavengers[J]. Chemosphere, 2016, 162:324-332.
|
[10] |
SURENJAN A, SAMBANDAM B, PRADEEP T, et al. Synthesis, characterization and performance of visible light active C-TiO2, for pharmaceutical photodegradation[J]. Journal of Environmental Chemical Engineering, 2017, 5(1):757-767.
|
[11] |
DR M M K, ANSARI S A, LEE J, et al. Highly visible light active Ag@TiO2 nanocomposites synthesized by electrochemically active biofilm:A Novel Biogenic Approach[J]. Nanoscale. 2013. 4427-4435.
|
[12] |
NGUYEN T B, DOONG R.et.al. Fabrication of highly visible-light-responsive ZnFe2O4/TiO2 heterostructures for the enhanced photocatalytic degradation of organic dyes[J]. Rsc Advances, 2016, 6. 103428-103437.
|
[13] |
XU S, HUANG H, WANG C, et al. Synthesis, characterization and hydrophilic properties of ZnFe2O4-TiO2, composite film[J]. Materials Research Bulletin, 2015, 65:210-215.
|
[14] |
XU Q, FENG J, LI L, et al. Hollow ZnFe2O4/TiO2, composites:High-performance and recyclable visible-light photocatalyst[J]. Journal of Alloys & Compounds, 2015, 641:110-118.
|
[15] |
LI R, KONG J, LIU H, et al. A sulfate radical based ferrous-peroxydisulfate oxidative system for indomethacin degradation in aqueous solutions[J]. Rsc Advances, 2017, 7(37):22802-22809.
|
[16] |
ZHANG Z L, WAN M, MAO Y L.et.al. Enhanced photovoltaic effect of TiO2-based composite ZnFe2O4/TiO2[J]. Journal of Photochemistry & Photobiology A Chemistry, 2012, 233(2):15-19.
|
[17] |
苏海英, 王盈霏, 王枫亮,等. g-C3N4/TiO2复合材料光催化降解布洛芬的机制[J]. 中国环境科学, 2017, 37(1):195-202.
SU H Y, WANG Y F, WANG F L, et al. Preparation of g-C3N4/TiO2 composites and the mechanism research of the photocatalysis degradation of ibuprofen[J]. China Environmental Science, 2017, 37(1):195-202(in Chinese).
|
[18] |
黄军磊, 刘国光, 王枫亮,等. 模拟饮用水消毒过程中高铁酸钾降解吲哚美辛的动力学分析[J]. 环境化学, 2016, 35(10):1985-1993.
HUANG J L, LIU G G, WANG F L, et al. Kinetics of indomethacin degradation by potassium ferrate in simulated disinfection of drinking water[J]. Environmental Chemistry, 2016, 35(10):1985-1993(in Chinese).
|
[19] |
牟晓英, 崔福义, 杨晓楠等. 水环境里纳米二氧化钛的表征及其零电位点的研究[J]. 纳米科技, 2011(1):43-45. MU X Y, CUI F Y, YANG X N, et al. Characterization of aqueous nano-sized titanium dioxide and research on their isoelectric points[J]. Nanoscience & Nanotechnology, 2011
(1):43-45(in Chinese).
|
[20] |
WANG Y, ZHU L, GAO F, et al. Preparation, characterization and photocatalytic activities of TiO2-SrTiO3 composites[J]. 2017, DOI:10.1088/1757-899X/167/1/012038.
|
[21] |
KHADGI N, UPRETI A R, LI Y, et al. Simultaneous bacterial inactivation and degradation of an emerging pollutant under visible light by ZnFe2O4 co-modified with Ag and rGO[J]. Rsc Advances, 2017, 7(43):27007-27016.
|
[22] |
ZHU X, ZHANG F, WANG M, et al. Facile synthesis, structure and visible light photocatalytic activity of recyclable ZnFe2O4/TiO2[J]. Applied Surface Science, 2014, 319(1):83-89.
|
[23] |
WANG F, CHEN P, FENG Y, et al. Facile synthesis of N-doped carbon dots/g-C3N4, photocatalyst with enhanced visible-light photocatalytic activity for the degradation of indomethacin[J]. Applied Catalysis B Environmental, 2017, 207:103-113.
|
[24] |
YAO Y, QIN J, CHEN H, et al. One-pot approach for synthesis of N-doped TiO2/ZnFe2O4 hybrid as an efficient photocatalyst for degradation of aqueous organic pollutants.[J]. Journal of Hazardous Materials, 2015, 291:28-37.
|