88
S. Mohapatra et al.
pharmaceuticals in Iberian rivers. Sci Total Environ 503–504:133–141. https://doi.org/10.1016/
j.scitotenv.2014.05.067 (For Table 2, permission was obtained from Elsevier, Copyright (2015))
Archer E, Petrie B, Kasprzyk-Hordern B, Wolfaardt GM (2017) The fate of pharmaceuticals and
personal care products (PPCPs), endocrine disrupting contaminants (EDCs), metabolites and
illicit drugs in a WWTW and environmental waters. Chemosphere 174:437–446
Ashton D, Hilton M, Thomas KV (2004) Investigating the environmental transport of human pharmaceuticals to streams in the United Kingdom. Total Environ, Sci. https://doi.org/10.1016/j.
scitotenv.2004.04.062
Avetta P, Fabbri D, Minella M, Brigante M, Maurino V, Minero C, Pazzi M, Vione D (2016)
Assessing the phototransformation of diclofenac, clo fi bric acid and naproxen in surface waters:
model predictions and comparison with field data. Water Res 105:383–394. https://doi.org/10.
1016/j.watres.2016.08.058
Aymerich I, Acuña V, Barceló D, García MJ, Petrovic M, Poch M, Rodriguez-Mozaz S, RodríguezRoda I, Sabater S, von Schiller D, Corominas L (2016) Attenuation of pharmaceuticals and their
transformation products in a wastewater treatment plant and its receiving river ecosystem. Water
Res 100:126–136. https://doi.org/10.1016/j.watres.2016.04.022
Azuma T, Ishida M, Hisamatsu K, Yunoki A, Otomo K, Kunitou M, Shimizu M, Hosomaru K,
Mikata S, Mino Y (2017) Fate of new three anti-influenza drugs and one prodrug in the water
environment. In: Chemosphere. Elsevier Ltd, pp 550–557. https://doi.org/10.1016/j.chemosphere.
2016.11.102
Baena-nogueras RM, González-mazo E, Lara-martín PA (2017) Degradation kinetics of pharmaceuticals and personal care products in surface waters: photolysis vs biodegradation. Sci Total
Environ 590–591:643–654. https://doi.org/10.1016/j.scitotenv.2017.03.015
Bai Y, Cui Z, Su R, Qu K (2018) Chemosphere in fluence of DOM components, salinity, pH, nitrate,
and bicarbonate on the indirect photodegradation of acetaminophen in simulated coastal waters.
Chemosphere 205:108–117. https://doi.org/10.1016/j.chemosphere.2018.04.087
Boix C, Ibáñez M, Sancho JV, Parsons JR, de Voogt P, Hernández F (2016) Biotransformation of
pharmaceuticals in surface water and during waste water treatment: Identification and occurrence
of transformation products. J Hazard Mater 302:175–187. https://doi.org/10.1016/j.jhazmat.2015.
09.053
Burns EE, Carter LJ, Kolpin DW, Thomas-Oates J, Boxall ABA (2018) Temporal and spatial
variation in pharmaceutical concentrations in an urban river system. Water Res 137:72–85. https://
doi.org/10.1016/j.watres.2018.02.066
Calisto V, Domingues MRM, Erny GL, Esteves VI (2011) Direct photodegradation of carbamazepine followed by micellar electrokinetic chromatography and mass spectrometry. Water
Res 45:1095–1104. https://doi.org/10.1016/j.watres.2010.10.037
Cédat B, de Brauer C, Métivier H, Dumont N, Tutundjan R (2016) Are UV photolysis and UV/H 2 O 2
process efficient to treat estrogens in waters? Chemical and biological assessment at pilot scale.
Water Res 100:357–366. https://doi.org/10.1016/j.watres.2016.05.040
Camacho-Munoz MD, Santos JL, Aparicio I, Alonso E (2010) Presence of pharmaceutically active
compounds in Doñana Park (Spain) main watersheds. J Hazard Mater 177:1159–1162
Chen Y, Rosazza JPN (1994) Microbial transformation of ibuprofen by a nocardia species. Appl
Environ Microbiol 60:1292–1296. https://doi.org/10.13140/RG.2.2.33690.13768
Chen Y, Zhang K, Zuo Y (2013) Direct and indirect photodegradation of estriol in the presence of
humic acid, nitrate and iron complexes in water solutions. Sci Total Environ 463–464:802–809.
https://doi.org/10.1016/j.scitotenv.2013.06.026
Chen Y, Liu L, Su J, Liang J, Wu B, Zuo J, Zuo Y (2017) Role of humic substances in the photodegradation of naproxen under simulated sunlight. Chemosphere 187:261–267. https://doi.org/
10.1016/j.chemosphere.2017.08.110
Chianese S, Iovino P, Leone V, Musmarra D, Prisciandaro M (2017) Photodegradation of Diclofenac
Sodium Salt in Water Solution: Effect of HA, NO 3
− and TiO 2 on Photolysis Performance. Water
Air Soil Pollut 228. https://doi.org/10.1007/s11270-017-3445-y
Précédent

- 109/447

Suivant