77. Tashkhourian J, Hemmateenejad B, Beigizadeh H, Hosseini-Sarvari M, Razmi Z (2014) ZnO
nanoparticles and multiwalled carbon nanotubes modified carbon paste electrode for determination of naproxen using electrochemical techniques. J Electroanal Chem 714-715:103–108
78. Bakr AR, Rahaman MS (2016) Electrochemical efficacy of a carboxylated multiwalled carbon
nanotube filter for the removal of ibuprofen from aqueous solutions under acidic conditions.
Chemosphere 153:508–520
79. Montes RHO, Lima AP, Cunha RR, Guedes TJ, Dos Santos WTP, Nossol E, Richter EM,
Munoz RAA (2016) Size effects of multi-walled carbon nanotubes on the electrochemical
oxidation of propionic acid derivative drugs: ibuprofen and naproxen. J Electroanal Chem
775:342–349
80. Morozova M, Kluson P, Krysa J, Vesely M, Dzik P, Solcova O (2012) Electrochemical
properties of TiO 2 electrode prepared by various methods. Procedia Eng 42:573–580
81. Carlson K, Tamallos J, Timmerman A, Misra M, Mohanty S (2016) Development of titanium
dioxide nanotube-based arrays for the electrocatalytic degradation and electrochemical detection of emerging pharmaceuticals in water. WIT Trans Ecol Envir 209:53–63
82. Quiroz MA, Martínez-Huitle CA, Meas-Vong Y, Bustos B, Cerro-Lopez M (2017) Effect of
lead dioxide high dispersion of titania nanotubes on the enhanced electrooxidation of aqueous
p-nitrophenol and methyl red: An electrode comparative study. J Electroanal Chem
807:261–267
83. Cui Y, Deng X, Ma Q, Zhang H, Cheng X, Li X, Xie M, Cheng Q, Li B (2018) Kinetics of
photoelectrocatalytic degradation of diclofenac using N, S co-doped TiO 2 nano-crystallite
decorated TiO 2 nanotube arrays photoelectrode. Environ Prot Eng 44:117–130
84. Peleyeju MG, Arotiba OA (2018) Recent trend in visible-light photoelectrocatalytic systems for
degradation of organic contaminants in water/wastewater. Environ Sci Wat Res Technol 4
(10):1389–1411
85. Orimolade BO, Koiki BA, Zwane BN, Peleyeju BM, Mabubaab N, Arotiba OA (2019)
Interrogating solar photoelectrocatalysis on an exfoliated graphite–BiVO 4 /ZnO composite
electrode towards water treatment. RSC 9(29):16586–16595
86. Gomes A, Frade T, Lobato K, Melo Jorge NE, Da Silva Pereira MI, Ciriaco L, Lopes A (2011)
Annealed Ti/Zn-TiO 2 nanocomposites tested as photoanodes for the degradation of ibuprofen. J
Solid State Elect 16(6):2061–2069
87. Li OL, Shi HL, Ishizaki T (2019) Enhanced electrocatalytic stability of platinum nanoparticles
supported on sulfur-doped carbon using in-situ solution plasma. Sci Rep 9:12704
88. Yeh MH, Chang SH, Lin LY, Chou HL, Vittal R, Hwang BJ, Ho KC (2015) Size effects of
platinum nanoparticles on the electrocatalytic ability of the counter electrode in dye-sensitized
solar cells. Nano Energy 17:241–253
89. Banerjee S, Dubey S, Gautam RK, Chattopadhyaya MC, Sharma YC (2017) Adsorption
characteristics of alumina nanoparticles for the removal of hazardous dye, Orange G from
aqueous solutions. Arab J Chem 12:5339–5354
90. Ferreira M, Güney S, Kuzniarska Biernacka I, Soares OSGP, Pereira MFR, Figueiredo JL,
Neves IC, Fonseca AM, Parpot P (2018) Electrochemical degradation of diclofenac on catalysts
based on CNT and M/CNT modified electrodes. CHEMPOR 2018 – 13th international chemical and biological engineering conference (Book of Extended Abstracts). No. P-EE11, Aveiro,
Portugal, Oct 2–4, pp 499–500. http://hdl.handle.net/1822/56865
Nanotechnologies for Removal of Nonsteroidal Anti-inflammatory Drug from. . .
301
nanoparticles and multiwalled carbon nanotubes modified carbon paste electrode for determination of naproxen using electrochemical techniques. J Electroanal Chem 714-715:103–108
78. Bakr AR, Rahaman MS (2016) Electrochemical efficacy of a carboxylated multiwalled carbon
nanotube filter for the removal of ibuprofen from aqueous solutions under acidic conditions.
Chemosphere 153:508–520
79. Montes RHO, Lima AP, Cunha RR, Guedes TJ, Dos Santos WTP, Nossol E, Richter EM,
Munoz RAA (2016) Size effects of multi-walled carbon nanotubes on the electrochemical
oxidation of propionic acid derivative drugs: ibuprofen and naproxen. J Electroanal Chem
775:342–349
80. Morozova M, Kluson P, Krysa J, Vesely M, Dzik P, Solcova O (2012) Electrochemical
properties of TiO 2 electrode prepared by various methods. Procedia Eng 42:573–580
81. Carlson K, Tamallos J, Timmerman A, Misra M, Mohanty S (2016) Development of titanium
dioxide nanotube-based arrays for the electrocatalytic degradation and electrochemical detection of emerging pharmaceuticals in water. WIT Trans Ecol Envir 209:53–63
82. Quiroz MA, Martínez-Huitle CA, Meas-Vong Y, Bustos B, Cerro-Lopez M (2017) Effect of
lead dioxide high dispersion of titania nanotubes on the enhanced electrooxidation of aqueous
p-nitrophenol and methyl red: An electrode comparative study. J Electroanal Chem
807:261–267
83. Cui Y, Deng X, Ma Q, Zhang H, Cheng X, Li X, Xie M, Cheng Q, Li B (2018) Kinetics of
photoelectrocatalytic degradation of diclofenac using N, S co-doped TiO 2 nano-crystallite
decorated TiO 2 nanotube arrays photoelectrode. Environ Prot Eng 44:117–130
84. Peleyeju MG, Arotiba OA (2018) Recent trend in visible-light photoelectrocatalytic systems for
degradation of organic contaminants in water/wastewater. Environ Sci Wat Res Technol 4
(10):1389–1411
85. Orimolade BO, Koiki BA, Zwane BN, Peleyeju BM, Mabubaab N, Arotiba OA (2019)
Interrogating solar photoelectrocatalysis on an exfoliated graphite–BiVO 4 /ZnO composite
electrode towards water treatment. RSC 9(29):16586–16595
86. Gomes A, Frade T, Lobato K, Melo Jorge NE, Da Silva Pereira MI, Ciriaco L, Lopes A (2011)
Annealed Ti/Zn-TiO 2 nanocomposites tested as photoanodes for the degradation of ibuprofen. J
Solid State Elect 16(6):2061–2069
87. Li OL, Shi HL, Ishizaki T (2019) Enhanced electrocatalytic stability of platinum nanoparticles
supported on sulfur-doped carbon using in-situ solution plasma. Sci Rep 9:12704
88. Yeh MH, Chang SH, Lin LY, Chou HL, Vittal R, Hwang BJ, Ho KC (2015) Size effects of
platinum nanoparticles on the electrocatalytic ability of the counter electrode in dye-sensitized
solar cells. Nano Energy 17:241–253
89. Banerjee S, Dubey S, Gautam RK, Chattopadhyaya MC, Sharma YC (2017) Adsorption
characteristics of alumina nanoparticles for the removal of hazardous dye, Orange G from
aqueous solutions. Arab J Chem 12:5339–5354
90. Ferreira M, Güney S, Kuzniarska Biernacka I, Soares OSGP, Pereira MFR, Figueiredo JL,
Neves IC, Fonseca AM, Parpot P (2018) Electrochemical degradation of diclofenac on catalysts
based on CNT and M/CNT modified electrodes. CHEMPOR 2018 – 13th international chemical and biological engineering conference (Book of Extended Abstracts). No. P-EE11, Aveiro,
Portugal, Oct 2–4, pp 499–500. http://hdl.handle.net/1822/56865
Nanotechnologies for Removal of Nonsteroidal Anti-inflammatory Drug from. . .
301
