[1] |
RABIET M, TOGOLA A, BRISSAUD F, et al. Consequences of treated water recycling as regards pharmaceuticals and drugs in surface and ground waters of a medium-sized mediterranean catchment[J]. Environmental Science & Technology, 2006, 40(17):5282-5288.
|
[2] |
刘奇, 魏东斌, 陈振斌,等. 医药品和个人护理用品(PPCPs)类污染物氯化转化行为研究进展[J]. 环境化学, 2012, 31(3):278-286.
LIU Q, WEI D, CHEN Z, et al. A review on transformation behaviors of PPCPs in chlorination process[J]. Environmental Chemistry, 2012, 31(3):278-286(in Chinese).
|
[3] |
KARTHIK R, KUMAR J, CHEN S, et al. A Study of electrocatalytic and photocatalytic activity of cerium molybdate nanocubes decorated graphene oxide for the sensing and degradation of antibiotic drug chloramphenicol[J]. ACS Applied Materials & Interfaces, 2017, 9:6547-6559.
|
[4] |
李春颖, 赖克强, 张源园,等. 表面增强拉曼光谱检测鱼肉中禁用和限用药物研究[J]. 化学学报, 2013, 71(2):221-226.
LI C, LAI K, ZHANG Y, et al. Use of surface-enhanced raman spectroscopy for the test of residuals of prohibited and restricted drugs in fish muscle[J]. Acta Chimica Sinica, 2013, 71(2):221-226(in Chinese).
|
[5] |
ZHANG Q, ZHANG Y, LI D. Cometabolic degradation of chloramphenicol via a meta-cleavage pathway in a microbial fuel cell and its microbial community[J]. Bioresource Technology, 2017, 229:104-110.
|
[6] |
NIE M, YAN C, LI M, et al. Degradation of chloramphenicol by persulfate activated by Fe2+, and zerovalent iron[J]. Chemical Engineering Journal, 2015, 279:507-515.
|
[7] |
BADAWY M I, WAHAAB R A, ELKALLINY A S. Fenton-biological treatment processes for the removal of some pharmaceuticals from industrial wastewater[J]. Journal of Hazardous Materials, 2009, 167(1-3):567-574.
|
[8] |
LOFRANO G, LIBRALATO G, ADINOLFI R, et al. Photocatalytic degradation of the antibiotic chloramphenicol and effluent toxicity effects[J]. Ecotoxicology & Environmental Safety, 2016, 123:65-71.
|
[9] |
JOSS A, ZABDZYNSKI S, GOBEL A, et al. Biological degradation of pharmaceuticals in municipal wastewater treatment:Proposing a classification scheme[J]. Water Research, 2006, 40(8):1686-1696.
|
[10] |
FAN Y, WANG B, YUAN S H, et al. Adsorptive removal of chloramphenicol from wastewater by NaOH modified bamboo charcoal[J]. Bioresource Technology, 2010, 101(19):7661-7664.
|
[11] |
ARSLAN-ALATON I, GURSES F. Photo-Fenton-like and photo-Fenton-like oxidation of procaine Penicillin G formulation effluent[J]. Journal of Photochemistry & Photobiology A Chemistry, 2004, 165(1):165-175.
|
[12] |
TROVO A G, NOGUEIRA R F, AGUERA A, et al. Photodegradation of sulfamethoxazole in various aqueous media:Persistence, toxicity and photoproducts assessment[J]. Chemosphere 2009, 77(10):1292-1298.
|
[13] |
HUG S J, LEUPIN O. Iron-catalyzed oxidation of arsenic(Ⅲ) by oxygen and by hydrogen peroxide:pH-dependent formation of oxidants in the Fenton reaction[J]. Environmental Science & Technology. 2003, 37(12):2734-2742.
|
[14] |
ARIKAN O A. Degradation and metabolization of chlortetracycline during the anaerobic digestion of manure from medicated calves[J]. Journal of Hazardous Materials, 2008, 158(2/3):485-490.
|
[15] |
MENDEZ-DIAZ J D, PRADOS-JOYA G, RIVERA-UTRILLA J, et al. Kinetic study of the adsorption of nitroimidazole antibiotics on activated carbons in aqueous phase[J]. Journal of Colloid & Interface Science, 2010, 345(2):481-490.
|
[16] |
BIAGLOW J E, KACHUR A V. The generation of hydroxyl radicals in the reaction of molecular oxygen with polyphosphate complexes of ferrous ion[J]. Radiation Research, 1997, 148(2):181-187.
|
[17] |
WELCH K D, DAVIS T Z, AUST S D. Iron autoxidation and free radical generation:Effects of buffers, ligands, and chelators[J]. Archives of Biochemistry & Biophysics, 2002, 397(2):360-369.
|
[18] |
KEENAN C R, SEDLAK D L. Ligand-enhanced reactive oxidant generation by nanoparticulate zero-valent iron and oxygen[J]. Environmental Science & Technology, 2011, 42(18):6936-6941.
|
[19] |
WANG L, WANG F, LI P, et al. Ferrous-tetrapolyphosphate complex induced dioxygen activation for toxic organic pollutants degradation[J]. Separation & Purification Technology, 2013, 120:148-155.
|
[20] |
WANG L, CAO M, AI Z, et al. Dramatically enhanced aerobic atrazine degradation with Fe@Fe2O3 core-shell nanowires by tetrapolyphosphate[J]. Environmental Science & Technology, 2014, 48(6):3354-3362.
|
[21] |
WANG L, CAO M, AI Z, et al. Design of a highly efficient and wide pH electro-Fenton oxidation system with molecular oxygen activated by ferrous-tetrapolyphosphate complex[J]. Environmental Science & Technology, 2015, 49(5):3032-3039.
|
[22] |
DENG J, FENG S F, ZHANG K, et al. Heterogeneous activation of peroxymonosulfate using ordered mesoporous Co3O4, for the degradation of chloramphenicol at neutral pH[J]. Chemical Engineering Journal, 2016, 308:505-515.
|
[23] |
JR A E H, SMART J A, AMIS E S. Simultaneous spectrophotometric determination of Iron(Ⅱ) and total iron with 1,10-phenanthroline[J]. Analytical Chemistry, 1955, 27(1):26-29.
|
[24] |
LIU W, AI Z H, CAO M H, et al. Ferrous ions promoted aerobic simazine degradation with Fe@Fe2O3, core-shell nanowires[J]. Applied Catalysis B Environmental, 2014, 150-151:1-11.
|
[25] |
SANCHEZ I, STUBER F, FONT J, et al. Elimination of phenol and aromatic compounds by zero valent iron and EDTA at low temperature and atmospheric pressure[J]. Chemosphere, 2007, 68(2):338-344.
|