References
- M.W.I. Schmidt, M.S. Torn, S. Abiven, T. Dittmar, G. Guggenberger,
I.A. Janssens, M. Kleber, I. Kogel-Knabner, J. Lehmann,
D.A.C. Manning, P. Nannipieri, D.P. Rasse, S. Weiner, S.E. Trumbore,
Persistence of soil organic matter as an ecosystem
property, Nature, 478 (2011) 49–56.
- J.S. Gaffney, N.A. Marley, S.B. Clark, Humic and fluvic acids
and organic colloidal materials in the environment, ACS Sym.,
651 (1996) 2–17.
- K. Markus, J. Markg, Advances in understanding the molecular
structure of soil organic matter: implications for interactions
in the environment, Adv. Agron., 106 (2010) 77–142.
- M. Bahemmat, M. Farahbakhsh, M. Kianirad, Humic substancesenhanced
electroremediation of heavy metals contaminated
soil, J. Hazard. Mater., 312 (2016) 307–318.
- A. Liu A, R.D. Gonzalez, Modeling adsorption of copper(II),
cadmium(II) and lead(II) on purified humic acid, Langmuir,
16 (2000) 3902–3909.
- W.Z. Tang, S. Tassos, Oxidation kinetics and mechanisms of
trihalomethanes by Fenton’s reagent, Water Res., 31 (1997)
1117–1125.
- H.J. Jung, J.S. Hong, J.K. Suh, A comparison of Fenton oxidation
and photocatalyst reaction efficiency for humic acid
degradation, J. Ind. Eng. Chem., 19 (2013) 1325–1330.
- N. Cheshomi, M. Pakizeh, M.N. Mahboub, Preparation and
characterization of TiO2/Pebax/(PSf‐PES) thin film nanocomposite
membrane for humic acid removal from water,
Polym. Adv. Technol., 29 (2018) 1303–1312.
- Y.Y. Wu, S.Q. Zhou, X.Y. Ye, R. Zhao, D.Y. Chen, Oxidation
and coagulation removal of humic acid using Fenton process,
Colloids Surf. A, 379 (2011) 151–156.
- D. Doulia, C. Leodopoulos, K. Gimouhopoulos, F. Rigas,
Adsorption of humic acid on acid-activated Greek bentonite,
J. Colloid Interface Sci., 340 (2009) 131–141.
- E. Derakhshani, A. Naghizadeh, Optimization of humic acid
removal by adsorption onto bentonite and montmorillonite
nanoparticles, J. Mol. Liq., 259 (2018) 76–81.
- W.L. Yan, R. Bai, Adsorption of lead and humic acid on chitosan
hydrogel beads, Water Res., 39 (2005) 688–698.
- G. Moussavi, S. Talebi, M. Farrokhi, R.M. Sabouti, The
investigation of mechanism, kinetic and isotherm of ammonia
and humic acid co-adsorption onto natural zeolite, Chem.
Eng. J., 171 (2011) 1159–1169.
- L. Jiang, Y.M. Li, Y. Shao, Y. Zhang, R.M. Han, S.Y. Li, W. Wei,
Enhanced removal of humic acid from aqueous solution by
novel stabilized nano-amorphous calcium phosphate: behaviors
and mechanisms, Appl. Surf. Sci., 427 (2018) 965–975.
- B. Seredyńska-Sobecka, M. Tomaszewska, The influence of
ozonation on the activated carbon adsorption of phenol and
humic acid, Pol. J. Chem. Technol., 9 (2007) 107–110.
- C.D. Shuang, F. Pan, Q. Zhou, A.M. Li, P.H. Li, W.B. Yang,
Magnetic polyacrylic anion exchange resin: preparation, characterization
and adsorption behavior of humic acid, Ind. Eng.
Chem. Res., 51 (2012) 4380–4387.
- S. Deng, R.B. Bai, Aminated polyacrylonitrile fibers for humic
acid adsorption: behaviors and mechanisms, Environ. Sci.
Technol., 37 (2003) 5799–5805.
- E.J. Cao, W.Z. Duan, L.S. Yi, A.Q. Wang, Y.A. Zheng, Poly(m-phenylenediamine) functionalized, Calotropis gigantea, fiber for
coupled adsorption reduction for Cr(VI), J. Mol. Liq., 240 (2017)
225–232.
- J.J. Huang, X. Zhang, L.L. Bai, S.G. Yuan, Polyphenylene sulfide
based anion exchange fiber: synthesis, characterization and
adsorption of Cr(VI), J. Environ. Sci. China, 24 (2012) 1433–1438.
- G. Henini, Y. Laidani, F. Souahi, S. Hanini, Study of static
adsorption system phenol/luffa cylindrica fiber for industrial
treatment of wastewater, Energy Procedia, 18 (2012) 395–403.
- S.R. Labafzadeh, K. Vyavaharkar, J.S. Kavakka, W.T.K. Alistair,
I. Kilpeläinen, Amination and thiolation of chloroacetyl cellulose
through reactive dissolution in N,N-dimethylformamide,
Carbohydr. Polym., 116 (2015) 60–66.
- H. Deng, J.H. Ning, X.N. Wang, Amino-functionalized cotton
fiber for enhanced adsorption of active brilliant red X-3B from
aqueous solution, Microsc. Res. Techniq., 79 (2016) 1200–1207.
- S.B. Deng, R.B. Bai, Adsorption and desorption of humic acid
on aminated polyacrylonitrile fibers, J. Colloid Interface Sci.,
280 (2004) 36–43.
- T.S. Anirudhan, S.R. Rejeena, A.R. Tharun, Investigation of the
extraction of hemoglobin by adsorption onto nanocellulosebased
superabsorbent composite having carboxylate functional
groups from aqueous solutions: kinetic, equilibrium, and
thermodynamic profiles, Ind. Eng. Chem. Res., 52 (2013)
11016–11028.
- X. Zhang, R. Bai, Mechanisms and kinetics of humic acid
adsorption onto chitosan-coated granules, J. Colloid Interface
Sci., 264 (2003) 30–38.
- W.S.W. Ngah, M.A.K.M. Hanafiah, S.S. Yong, Adsorption of
humic acid from aqueous solutions on crosslinked chitosan–epichlorohydrin beads: kinetics and isotherm studies, Colloids
Surf. B, 65 (2008) 18–24.
- S.H. Maghsoodloo, B. Noroozi, A.K. Haghi, G.A. Sorial,
Consequence of chitosan treating on the adsorption of humic
acid by granular activated carbon, J. Hazard. Mater., 191 (2011)
380–387.
- Z. Ioannou, J. Simitzis, Adsorption kinetics of phenol and
3-nitrophenol from aqueous solutions on conventional and
novel carbons, J. Hazard. Mater., 171 (2009) 954–964.