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75. Wang Y, Shen C, Li L, Li H, Zhang M (2016) Electrolytic degradation of ibuprofen in aqueous
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76. Tabeshnia M, Heli H, Jabbari A, Moosavi-Movahedi A (2010) Electro-oxidation of
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water by anodic oxidation with multiwall carbon nanotubes glassy carbon electrode. Water Sci
Technol 79(3):490–488
58. Ching-Ju MC, Tsan-Yao C, Menshan L, Chiung-Fen C, Yu-Ting L, Yu-Tsun K (2014)
Effective anodic oxidation of naproxen by platinum nanoparticles coated FTO glass. J Hazard
Mater 277:110–119
59. Cheshmeh Soltani RD, Mashayekhi M (2018) Decomposition of ibuprofen in water via an
electrochemical process with nano-sized carbon black-coated carbon cloth as oxygen permeable
cathode integrated with ultrasound. Chemosphere 194:471–480
60. Pourzamani H, Mengelizadeh N, Hajizadeh Y, Mohammadi H (2019) Electrochemical degradation of diclofenac using three-dimensional electrode reactor with multi-walled carbon
nanotubes. Environ Sci Pollut Res Int 25(25):24746–24763
61. Chang CF, Chen TY, Chin CJM, Kuo YT (2017) Enhanced electrochemical degradation of
ibuprofen in aqueous solution by PtRu alloy catalyst. Chemosphere 175:76–84
62. Motoc S, Remes A, Pop A, Manea F, Schoonman J (2012) Electrochemical detection and
degradation of ibuprofen from water on multi-walled carbon nanotubes-epoxy composite
electrode. J Environ Sci 25(4):838–847
63. Kirkham MB (2014) Principles of soil and plant water relations. Academic Press, Cambridge
64. Chemistry Libretexts (2019) Standard electrodes. https://chem.libretexts.org/Bookshelves/Ana
lytical_Chemistry/Supplemental_Modules_(Analytical_Chemistry)/Electrochemistry/Elec
trodes/Standard_Hydrogen_Electrode. Accessed 6 Nov 2019
65. Motoc S, Manea F, Pop A, Pode R, Teodosiu C (2012) Electrochemical degradation of
pharmaceutical effluents on carbon-based electrodes. Environ Eng Manag J 11(3):627–634
66. Feng L, Van Hullesbusch ED, Rodrigo MA, Esposito G, Oturan MA (2013) Removal of
residual anti-inflammatory and analgesic pharmaceuticals from aqueous systems by electrochemical advanced oxidation processes. A review. Chem Eng J 228(15):944–964
67. Ciríaco L, Anjo C, Correia J, Pacheco MJ, Lopes A (2009) Electrochemical degradation of
ibuprofen on Ti/Pt/PbO 2 and Si/BDD electrodes. EletrochimActa 54:1464–1472
68. Sifuna FW, Orata F, Okello V, Jemutai-Kimosop S (2016) Comparative studies in electrochemical degradation of sulfamethoxazole and diclofenac in water by using various electrodes
and phosphate and sulfate supporting electrolytes. J Environ Sci Health A Tox Hazard Subst
Environ Eng 51(11):1–8
69. Coria G, Sirés I, Barillas E, Nava JL (2016) Influence of the anode material on the degradation
of naproxen by Fenton-based electrochemical process. Chem Eng J 304:817–825
70. Wang JL, Wu LJ (2012) Advanced oxidation processes for wastewater treatment: formation of
hydroxyl radical and application. Crit Rev Env Sci Tec 42(3):251–325
71. Lower S (2019) Electrolytes and electrolytic solutions. https://chem.libretexts.org/Bookshelves/
General_Chemistry/Book%3A_Chem1_(Lower)/08%3A_Solution_Chemistry/8.9%3A_Ions_
and_Electrolytes/8.9A%3A_Electrolytes_and_Electrolytic_Solutions. Accessed 6 Nov 2019
72. Murugananthan M, Latha SS, Bhaskar Raju G, Yoshihara S (2010) Anodic oxidation of
ketoprofen-an anti-inflammatory drug using boron doped diamond and platinum electrodes. J
Hazard Mater 180:753–758
73. JHT L, Male KB, Glennon JD (2009) Boron-doped diamond electrode: synthesis, characterization, functionalization and analytical applications. Analyst 134(10):1965–1979
74. Ji Z, Liu T, Tian H (2017) Electrochemical degradation of diclofenac for pharmaceutical
wastewater treatment. Int J Electrochem Sci 12:7807–7816
75. Wang Y, Shen C, Li L, Li H, Zhang M (2016) Electrolytic degradation of ibuprofen in aqueous
solution by a cobalt-doped modified lead dioxide electrode: influencing factor and energy
demand. RSC Adv 6(36):30598–30610
76. Tabeshnia M, Heli H, Jabbari A, Moosavi-Movahedi A (2010) Electro-oxidation of
non-steroidal anty-inflammatory drugs on an alumina nanoparticle-modified glassy carbon
electrode. Turk J Chem 34(1):34–35
300
M. Cerro-Lopez et al.
