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20110401
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ISSN 1870-249X
45. Comninellis C, Chen G (2010) Electrochemistry for the environment. Springer, New York
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47. Rodrigues de Oliveira G, Suely Fernandes N, Vieira de Melo J, Ribeiro da Silva D, Urgeghe
C, Martínez-Huitle CA (2011) Electrocatalytic properties of Ti-supported Pt for decolorizing
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Chem Rev
R. Sukanya Devi et al.
28. Brugnera MF, de Araújo Souza BC, Zanoni MVB (2016) Advanced oxidation process applied
to actinobacterium disinfection. In: Actinobacteria: basics and biotechnological applications,
vol 353
29. Miklos DB, Remy C, Jekel M, Linden KG, Drewes JE, Hübner U (2018) Evaluation of advanced
oxidation processes for water and wastewater treatment—a critical review. Water Res 139:118–
131. https://doi.org/10.1016/j.watres.2018.03.042. Epub 2018 Mar 22. PMID: 29631187
30. Amor C, Marchão L, Lucas MS, Peres JA (2019) Application of advanced oxidation processes
for the treatment of recalcitrant agro-industrial wastewater: a review. Water 11(2):205
31. Klemeš JJ (2009) Water footprint, water recycling and food-industry supply chains. In:
Handbook of waste management and co-product recovery in food processing
32. Yin GQ, Lo KV, Liao PH (2008) Microwave enhanced advanced oxidation process for sewage
sludge treatment: the effects of ozone addition. J Environ Eng Sci 7(2):115–122. https://doi.
org/10.1139/s07-042
33. Merenyi G, Lind J, Naumov S, von Sonntag C (2010) Reaction of ozone with hydrogen peroxide
(peroxone process): a revision of current mechanistic concepts based on thermokinetic and
quantum-chemical considerations. Environ Sci Technol 44(9):3505e3507. https://doi.org/10.
1021/es100277d
34. Merenyi G, Lind J, Naumov S, von Sonntag C (2010) The reaction of ozone with the hydroxide
ion: mechanistic considerations based on thermokinetic and quantum chemical calculations and
the role of HO4- in superoxide dismutation. Chemistry 16(4):1372–1377. https://doi.org/10.
1002/chem.200802539
35. Bili´ nska L, Blus K, Gmurek M, Ledakowicz S (2019) Coupling of electrocoagulation and
ozone treatment for textile wastewater reuse. Chem Eng J
36. Song K, Mohseni M, Taghipour F (2016) Application of ultraviolet light-emitting diodes (UVLEDs) for water disinfection: a review. Water Res 94:341–349. https://doi.org/10.1016/j.wat
res.2016.03.003
37. Ibrahim N, Zainal SFFS, Aziz HA (2019) Application of UV-based advanced oxidation
processes in water and wastewater treatment, Chap. 14. IGI Global
38. Makhatova A, Mazhit B, Sarbassov Y, Meiramkulova K, Inglezakis VJ, Poulopoulos SG (2020)
Effective photochemical treatment of a municipal solid waste landfill leachate. PLOS ONE
39. Kumar V, Singh K, Shah MP (2021) Advanced oxidation processes for complex wastewater
treatment. Elsevier BV
40. Mierzwa JC, Rodrigues R, Teixeira ACSC (2018) UV-hydrogen peroxide processes. Elsevier
BV
41. Mishra N, Reddy R, Kuila A, Rani A, Nawaz A, Pichiah S (2017) A review on advanced
oxidation processes for effective water treatment. Curr World Environ
42. (2010) Electrochemistry for the environment. Springer Science and Business Media LLC
43. Ghernaout D, On the dependence of chlorine by-products generated species formation of the
electrode material and applied charge during electrochemical water treatment. Desalination,
20110401
44. Barrera-Diaz C et al (2014) Electrochemical advanced oxidation processes: an overview of the
current applications to actual industrial effluents. J Mex Chem Soc 58(3):256–275 [online].
ISSN 1870-249X
45. Comninellis C, Chen G (2010) Electrochemistry for the environment. Springer, New York
46. Devi RS, Geethakarthi A (2020) Electro-chemical coagulation treatment for the degradation
of reactive blue 25 dye effluent using different electrodes. In AIP Conference Proceedings, vol
2270, no 1, p 060006. AIP Publishing LLC
47. Rodrigues de Oliveira G, Suely Fernandes N, Vieira de Melo J, Ribeiro da Silva D, Urgeghe
C, Martínez-Huitle CA (2011) Electrocatalytic properties of Ti-supported Pt for decolorizing
and removing dye from synthetic textile wastewaters. Chem Eng J
48. Stupar SL (2017) Direct and indirect electrochemical degradation of acid blue 111 using irOx
anode. Int J Electrochem Sci
49. Panizza M, Cerisola G (2009) Direct and mediated anodic oxidation of organic pollutants.
Chem Rev
