References
- F. Fu, Q. Wang, Removal of heavy metal ions from wastewaters:
a review, J. Environ. Manage., 92 (2011) 407–418.
- H. Wang, H. Wang, H. Zhao, Q. Yan, Adsorption and Fentonlike
removal of chelated nickel from Zn-Ni alloy electroplating
wastewater using activated biochar composite derived from
Taihu blue algae, Chem. Eng. J., 379 (2020) 122372.
- A. Luptakova, S. Ubaldini, E. Macingova, P. Fornari, V. Giuliano,
Application of physical-chemical and biological-chemical
methods for heavy metals removal from acid mine drainage,
Process Biochem., 47 (2012) 1633–1639.
- M. Khalid, M. Usman, M. Siddiq, N. Rasool, M.J. Saif, M. Imran,
U.A. Rana, Removal of Ni(II) from aqueous solution by using
micellar enhanced ultrafiltration, Water Sci. Technol., 72 (2015)
946–951.
- S. Malamis, E. Katsou, K. Takopoulos, P. Demetriou,
M. Loizidou, Assessment of metal removal, biomass activity
and RO concentrate treatment in an MBR-RO system, J. Hazard.
Mater., 209–210 (2012) 1–8.
- K.G. Bhattacharyya, S.S. Gupta, Influence of acid activation on
adsorption of Ni(II) and Cu(II) on kaolinite and montmorillonite:
kinetic and thermodynamic study, Chem. Eng. J., 136 (2008)
1–13.
- S. Bayar, Y.Ş. Yıldız, A.E. Yılmaz, Ş. İrdemez, The effect of
stirring speed and current density on removal efficiency of
poultry slaughterhouse wastewater by electrocoagulation
method, Desalination, 280 (2011) 103–107.
- B. Alyüz, S. Veli, Kinetics and equilibrium studies for the
removal of nickel and zinc from aqueous solutions by ion
exchange resins, J. Hazard. Mater., 167 (2009) 482–488.
- M.A. Barakat, New trends in removing heavy metals from
industrial wastewater, Arabian J. Chem., 4 (2011) 361–377.
- F. Einmozaffari, M. Mohajerani, M. Mehrvar, An overview of
the integration of advanced oxidation technologies and other
processes for water and wastewater treatment, Environ. Behav.,
41 (2009) 125–146.
- D. Nichela, M. Haddou, F. Benoit-Marquié, M. Maurette,
E. Oliveros, F.S. García Einschlag, Degradation kinetics of
hydroxy and hydroxynitro derivatives of benzoic acid by
fenton-like and photo-fenton techniques: a comparative study,
Appl. Catal., B, 98 (2010) 171–179.
- J. Ma, W. Song, C. Chen, W. Ma, J. Zhao, Y. Tang, Fenton
degradation of organic compounds promoted by dyes
under visible irradiation, Environ. Sci. Technol., 39 (2005)
5810–5815.
- D. Jiang, Y. Li, Y. Wu, P. Zhou, Y. Lan, L. Zhou, Photocatalytic
reduction of Cr(VI) by small molecular weight organic acids
over schwertmannite, Chemosphere, 89 (2012) 832–837.
- H. Duan, Y. Liu, X. Yin, J. Bai, J. Qi, Degradation of nitrobenzene
by Fenton-like reaction in a H2O2/schwertmannite system,
Chem. Eng. J., 283 (2016) 873–879.
- Z. Miao, X. Gu, S. Lu, M.L. Brusseau, N. Yan, Z. Qiu, S. Qian,
Enhancement effects of reducing agents on the degradation of
tetrachloroethene in the Fe(II)/Fe(III) catalyzed percarbonate
system, J. Hazard. Mater., 300 (2015) 530–537.
- J. De Laat, H. Gallard, Catalytic decomposition of hydrogen
peroxide by Fe(III) in homogeneous aqueous solution:
mechanism and kinetic modeling, Environ. Sci. Technol.,
33 (1999) 2726–2732.
- C. Jiang, S. Pang, F. Ouyang, J. Ma, J. Jiang, A new insight
into Fenton and Fenton-like processes for water treatment,
J. Hazard. Mater., 174 (2010) 813–817.
- S. Samiee, Z. Mahdavifar, Theoretical studies of n-membered
ring chelate complexes of Ni(II), Pd(II) and Pt(II) derived
from bidentate phosphorus ylides, Polyhedron, 72 (2014)
72–82.
- C.P. Ennis, R.I. Kaiser, Mechanistical studies on the electroninduced
degradation of polymethylmethacrylate and Kapton,
Phys. Chem. Chem. Phys., 12 (2010) 14902.
- H. Che, W. Lee, Selective redox degradation of chlorinated
aliphatic compounds by Fenton reaction in pyrite suspension,
Chemosphere, 82 (2011) 1103–1108.
- J.L. Tambosi, M.D. Domenico, W.N. Schirmer, J.J. Humberto,
R.F. Moreira, Treatment of paper and pulp wastewater and
removal of odorous compounds by a Fenton-like process at the
pilot scale, J. Chem. Technol. Biotechnol., 81 (2006) 1426–1432.
- G.M.S. ElShafei, F.Z. Yehia, O.I.H. Dimitry, A.M. Badawi,
G. Eshaq, Degradation of nitrobenzene at near neutral pH using
Fe2+ glutamate complex as a homogeneous Fenton catalyst,
Appl. Catal., B, 99 (2010) 242–247.
- A.D. Bokare, W. Choi, Review of iron-free Fenton-like systems
for activating H2O2 in advanced oxidation processes, J. Hazard.
Mater., 275 (2014) 121–135.
- D.A. Nichela, A.M. Berkovic, M.R. Costante, M.P. Juliarena,
F.S. García Einschlag, Nitrobenzene degradation in Fentonlike
systems using Cu(II) as catalyst. Comparison between
Cu(II)- and Fe(III)-based systems, Chem. Eng. J., 228 (2013)
1148–1157.
- S. Wang, Comparative study of Fenton and Fenton-Like
reaction kinetics in decolourisation of wastewater, Dyes Pigm.,
76 (2008) 714–720.
- F. Fu, Q. Wang, B. Tang. Fenton and Fenton-like reaction
followed by hydroxide precipitation in the removal of Ni(II)
from NiEDTA wastewater: a comparative study, Chem. Eng. J.,
155 (2009) 769–774.
- A. Violante, M. Ricciardella, M. Pigna, Adsorption of heavy
metals on mixed Fe-Al oxides in the absence or presence of
organic ligands, Water Air Soil Pollut., 145 (2003) 289–306.
- L. Gomathi Devi, S. Girish Kumar, K. Mohan Reddy, C.
Munikrishnappa, Photo degradation of methyl orange an azo
dye by advanced Fenton process using zero valent metallic iron:
influence of various reaction parameters and its degradation
mechanism, J. Hazard. Mater., 164 (2009) 459–467.
- S. Sabhi, J. Kiwi, Degradation of 2,4-dichlorophenol by
immobilized iron catalysts, Water Res., 35 (2001) 1994–2002.