Emerging Water Pollutants and Wastewater Treatments
41
124. Kolosov P, Yargeau V (2019) Impact of catalyst load, chemical oxygen demand and nitrite on
disinfection and removal of contaminants during catalytic ozonation waste water. Sci Total
Environ 651:2139–2147
125. Sushma, Kumari M, Saroha AK (2018) Performance of various catalysts on treatment of
refractory pollutants in industrial wastewater by catalytic wet air oxidation: a review. J Environ
Manag 228:169–188
126. Wang J, Bai Z (2017) Fe-based catalysts for heterogeneous catalytic ozonation of emerging
contaminants in water and wastewater. Chem Eng J 312:79–98
127. Na S-Y, Lee Y (2017) Elimination of trace organic contaminants during enhanced wastewater treatment with horseradish peroxidase/hydrogen peroxide (HRP/H 2 O 2 ) catalytic process.
Catal Today 282:86–94
128. Sun Y, Yang Q, Zhang Y, Ge L, Xu Y, Qian G (2019) Synthesis, characterization and catalytic
application of ZnPO molecular sieve in wastewater system. J Clean Prod 213:1165–1171
129. Galvan RF, Barranco V, Galvan JC, Batlle, Sebastian FeliuFajardo., García, Piccardo, M,
Renzi, M, Terlizzi A, Shen M, Zhang Y, Zhu Y, Song B, Zeng G, Hu D, Wen X, Ren X, Malakar
A, Snow DD, Witchel E (2019) Nanoparticles as sources of inorganic water pollutants. Environ
Pollut 7(1):337–370
130. Chen D, Wang L, Ma Y, Yang W (2016) Super-adsorbent material based on functional polymer
particles with a multilevel porous structure. NPG Asia Materials 8(8):e301–e301. https://doi.
org/10.1038/am.2016.117
131. Rashed MN (2012) Adsorption Technique for the Removal of Organic Pollutants from
Water and Wastewater. Organic Pollutants—Monitoring, Risk and Treatment—Book Chapter,
IntechOpen. https://doi.org/10.5772/54048, i(tourism), 13
132. Inyinbor AA, Adekola FA, Olatunji GA (2016) Kinetic and thermodynamic modeling of liquid
phase adsorption of Rhodamine B dye onto Raphia hookerie fruit epicarp. Water Resources
and Industry 15:14–27
133. Ghaly M, El-Dars FMSE, Hegazy MM, Abdel Rahman RO (2016) Evaluation of synthetic
Birnessite utilization as a sorbent for cobalt and strontium removal from aqueous solution.
Chem Eng J 284:1373–1385
134. Atkins PW (1994) Physical Chemistry, 5th edn. Oxford University Press, Oxford, pp 922–926
135. Goodwin HM (1901) Physical chemistry. J Amer Chem Soc 23(7). https://doi.org/10.1021/
ja02033a032
136. Patel H (2019) Fixed—bed column adsorption study: a comprehensive review. Appl Water
Sci 9(3):1–17. https://doi.org/10.1007/s13201-019-0927-7
137. Cavalcante Jr, CL (2000) Industrial adsorption separation processes: fundamentals, modeling
and applications. Latin Amer Appl Res 30:357–364
138. Monash P, Pugazhenthi G (2010) Separation science and technology removal of crystal violet
dye from aqueous solution using calcined and uncalcined mixed clay adsorbents removal of
crystal violet dye from aqueous solution using calcined and uncalcined mixed clay adsorbents.
Sep Sci Technol 45(1):94–104
139. Dada OA, Adekola FA, Odebunmi EO (2016) Kinetics and equilibrium models for sorption
of Cu (II) onto a Novel Manganese Nano-adsorbent. J Dispersion Sci Technol 37(1):119–133.
https://doi.org/10.1080/01932691.2015.1034361
140. Inyinbor AA, Adekola FA, Olatunji GA (2016) Liquid phase adsorption of Rhodamine B onto
acid treated Raphia hookerie epicarp: Kinetics, Isotherm and thermodynamics studies. S Afr
J Chem 69:218–226
141. Adekola FA, Jimoh S, Inyinbor AA (2018) P-nitrophenol removal from aqueous solution
using raw and modified kaolinite; Orbital: Electron J Chem 10(6):435–445
142. Inyinbor AA, Adekola FA, Dada AO, Oluyori AP, Olatunji GA, Fanawopo OF, Oreofe
TA, Abodunrin TO (2019) Novel acid treated biomass: Applications in Cu 2+ scavenging,
Rhodamine B/Cu 2+ binary solution and real textile effluent treatment. Environ Technol Innov
13:37–47
143. Inyinbor AA, Adekola FA, Olatunji GA (2019) Copper scavenging efficiency of adsorbents
prepared from Raphia hookeri fruit waste. Sustain Chem Pharmacy 12:100141
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