References
- C. Păcurariu, G. Mihoc, A. Popa, S.G. Muntean, R. Ianoş,
Adsorption of phenol and p-chlorophenol from aqueous solutions
on poly (styrene-co-divinylbenzene) functionalized
materials, Chem. Eng. J., 222 (2013) 218–227.
- O. Abdelwahab, N.K. Amin, E.-S.Z. El-Ashtoukhy, The investigation
of phenol removal from aqueous solutions by water
hyacinth, Sep. Sci. Technol., 49 (2014) 1604–1612.
- V.K. Gupta, M. Sharma, K. Singh, R.K. Vyas, Reactive adsorption
of phenol onto Fe-GAC: Parallel pore batch modeling and
experimental studies, J. Taiwan Inst. Chem. Eng., 63 (2016)
116–124.
- J. Yin, R. Chen, Y. Ji, C. Zhao, G. Zhao, H. Zhang, Adsorption
of phenols by magnetic polysulfone microcapsules containing
tributyl phosphate, Chem. Eng. J., 157 (2010) 466–474.
- F. Moradi, M.D. Ganji, Y. Sarrafi, Remediation of phenol-contaminated
water by pristine and functionalized SWCNTs: Ab
initio van der Waals DFT investigation, Diam. Relat. Mater., 82
(2018) 7–18.
- Z.M. Ahmed, S. Lyne, R. Shahrabani, Removal and recovery of
phenol from phenolic wastewater via ion exchange and polymeric
resins, Environ. Eng. Sci., 17 (2000) 245–255.
- Y. Tai, L. Wang, J. Gao, W.A. Amer, W. Ding, H. Yu, Synthesis
of Fe3O4@poly(methylmethacrylate-co-divinylbenzene) magnetic
porous microspheres and their application in the separation
of phenol from aqueous solutions, J. Colloid Interf. Sci.,
360 (2011) 731–738.
- W. Cichy, J. Szymanowski, Recovery of phenol from aqueous
streams in hollowfiber modules, Environ. Sci. Technol., 36
(2002) 2088–2093.
- Z. Li, M. Wu, Z. Jiao, B. Bao, S. Lu, Extraction of phenol from
wastewater by N-octonoylpyrrolidine, J. Hazard. Mater. B, 114
(2004) 111–114.
- L.Z. Wang, Y.M. Zhao, J.F. Fu, The influence of TiO2 and aeration
on the kinetics of electrochemical oxidation of phenol in
packed bed reactor, J. Hazard. Mater., 160 (2008) 608–613.
- H.B. Senturk, D. Ozdes, A. Gundogdu, C. Duran, M. Soylak,
Removal of phenol from aqueous solutions by adsorption onto
organomodified Tirebolu bentonite: equilibrium, kinetic and
thermodynamic study, J. Hazard. Mater., 172 (2009) 353–362.
- K. Baransi, Y. Dubowski, I. Sabbah, Synergetic effect between
photocatalytic degradation and adsorption processes on the
removal of phenolic compounds from olive mill wastewater,
Water Res., 46 (2012) 789–798.
- D. Peredo-Mancilla, H. Dominguez, Adsorption of phenol
molecules by sodium dodecyl sulfate (SDS) surfactants deposited
on solid surfaces: A computer simulation study, J. Mol.
Graph. Model., 65 (2016) 108–112.
- F.A. Banat, B. Al-Bashir, S. Al-Asheh, O. Hayajneh, Adsorption
of phenol by bentonite, Environ. Pollut., 107 (2000) 391−398.
- A.Y. Cetinkaya, O.K. Ozdemir, Phenol removal from synthetic
solution using low pressure membranes coated with graphene
oxide and carbon, Chem. Pap., 72 (2018) 327–335.
- B.C. Pan, W. Du, W.M. Zhang, X. Zhang, Q.R. Zhang, B.J. Pan,
L. Lv, Q.X. Zhang, J.L. Chen, Improved adsorption of 4-nitrophenol
onto a novel hyper-cross-linked polymer, Environ. Sci.
Technol., 41 (2007) 5057–5062.
- K.M. Smith, G.D. Fowler, S. Pullket, N.J.D. Graham, Sewage
sludge-based adsorbents: a review of their production, properties
and use in water treatment applications, Water Res., 43
(2009) 2569–2594.
- L. Damjanovic, V. Rakic, V. Rac, D. Stosic, A. Auroux, The
investigation of phenol removal from aqueous solutions by
zeolites as solid adsorbents, J. Hazard. Mater., 184 (2010)
477–484.
- Ihsanullah, H.A. Asmaly, T.A. Saleh, T. Laoui, V.K. Gupta,
M.A. Atieh, Enhanced adsorption of phenols from liquids by
aluminum oxide/carbon nanotubes: Comprehensive study
from synthesis to surface properties, J. Mol. Liq., 206 (2015)
176–182.
- B. Abussaud, H.A. Asmaly, Ihsanullah, T.A. Saleh, V.K.
Gupta, T. Laoui, M.A. Atieh, Sorption of phenol from waters
on activated carbon impregnated with iron oxide, aluminum
oxide and titanium oxide, J. Mol. Liq., 213 (2016) 351–359.
- Y. Li, X. Hu, X. Liu, Y. Zhang, Q. Zhao, P. Ning, S. Tian, Adsorption
behavior of phenol by reversible surfactant-modified
montmorillonite: Mechanism, thermodynamics, and regeneration,
Chem. Eng. J., 334 (2018) 1214–1221.
- A. Denizli, G. Özkan, M. Uçar, Removal of chlorophenols
from aquatic systems with dye-affinity microbeads, Sep. Purif.
Technol., 24 (2001) 255–262.
- İ. Abay, A. Denizli, E. Bişkin, B. Salih, Removal and pre-concentration
of phenolic species onto β-cyclodextrin modified
poly(hydroxyethylmethacrylate-ethyleneglycoldimethacrylate)
microbeads, Chemosphere, 61 (2005) 1263–1272.
- N. Kawabata, Y. Tsuchida, Y. Nakamori, M. Kitamura, Adsorption
of phenol on clustered micro-sphere porous beads made
of cross-linked poly-4-vinylpyridine, React. Funct. Polym., 66
(2006) 1641–1648.
- S.K. Nadavala, K. Swayampakula, V.M. Boddu, K. Abburi, Biosorption
of phenol and o-chlorophenol from aqueous solutions
on to chitosan-calcium alginate blended beads, J. Hazard.
Mater., 162 (2009) 482–489.
- F. Belaib, A.H. Meniai, M.B. Lehocine, Elimination of phenol
by adsorption onto mineral/polyaniline composite solid support,
Energy Procedia., 18 (2012) 1254–1260.
- S. Yuan, J. Gu, Y. Zheng, W. Jiang, B. Liang, S.O. Pehkonen,
Purification of phenol-contaminated water by adsorption
with quaternized poly(dimethylaminopropyl methacrylamide)-grafted PVBC microspheres, J. Mater. Chem. A, 3
(2015) 4620–4636.
- M.L. Nguyen, C. Huang, R.-S. Juang, Synergistic biosorption
between phenol and nickel(II) from binary mixtures on chemically
and biologically modified chitosan beads, Chem. Eng. J.,
286 (2016) 68–75.
- G. Xiao, R. Wen, P. You, D. Wu, Adsorption of phenol onto four
hyper-cross-linked polymeric adsorbents: Effect of hydrogen
bonding receptor in micropores on adsorption capacity,
Micropor. Mesopor. Mat., 239 (2017) 40–44.
- J.A. Galicia-Aguilar, J.D. Santamaría-Juárez, M. López-Badillo,
M. Sánchez-Cantú, J.L. Varela-Caselis, Synthesis and
characterization of AN/EGDMA-based adsorbents for phenol
Adsorption, React. Funct. Polym., 117 (2017) 112–119.
- A. Kara, S. Aksoy, N. Beşirli, Adsorption properties of Cr(VI)
onto microspheres carrying imidazole functional groups:
kinetic and isotherm studies, Hacettepe J. Biol. Chem., 40
(2012) 37–44.
- A. Kara, L. Uzun, N. Beşirli, A. Denizli, Poly(ethylene glycol
dimethacrylate-n-vinyl imidazole) beads for heavy metal
removal, J. Hazard. Mater., 106B (2004) 93–99.
- B. Osman, A. Kara, N. Beşirli, Tyrosinase immobilization on
Cu2+ chelated Poly(ethylene glycol dimethacrylate-N-vinyl
imidazole) beads, Hacettepe J. Biol. Chem., 35 (2007) 233–241.
- B. Osman, A. Kara, L. Uzun, N. Beşirli, A. Denizli, Vinyl imidazole
carrying metal-chelated beads for reversible use in yeast
invertase adsorption, J. Mol. Catal. B-Enzym., 37 (2005) 88–94.
- A. Kara, B. Osman, H. Yavuz, N. Beşirli, A. Denizli, Immobilization
of α-amylase on Cu2+ chelated poly(ethylene glycol
dimethacrylate-n-vinyl imidazole) matrix via adsorption,
React. Funct. Polym., 62 (2005) 61–68.
- M.G. Segatelli, V.S. Santos, A.B.T. Presotto, I.V.P. Yoshida,
C.R.T. Tarley, Cadmium ion-selective sorbent preconcentration
method using ion imprinted poly(ethylene glycol dimethacrylate-co-vinylimidazole), React. Funct. Polym., 70 (2010) 325–333.
- C.R.T. Tarley, M.Z. Corazza, B.F. Somera, M.G. Segatelli,
Preparation of new ion-selective cross-linked poly(vinylimidazole-co-ethyleneglycol dimethacrylate) using a double-imprinting
process for the preconcentration of Pb2+ ions, J. Colloid
Interf. Sci., 450 (2015) 254–263.
- D. Schemeth, C. Kappacher, M. Rainer, R. Thalinger, G.K.
Bonn, Comprehensive evaluation of imidazole-based polymers
for the enrichment of selected non-steroidal anti-inflammatory
drugs, Talanta, 153 (2016) 177–185.
- D. Schemeth, J.C. Noël, T. Jakschitz, M. Rainer, R. Tessadri,
C.W. Huck, G.K. Bonn, Poly(N-vinylimidazole/ethylene glycol
dimethacrylate) for the purification and isolation of phenolic
acids, Anal. Chim. Acta, 885 (2015) 199–206.
- E. Uğuzdoğan, E.B. Denkbaş, E. Öztürk, S.A. Tuncel, O.S. Kabasakal,
Preparation and characterization of polyethyleneglycolmethacrylate (PEGMA)-co-vinylimidazole (VI) microspheres
to use in heavy metal removal, J. Hazard. Mater., 162 (2009)
1073–1080.
- E. Uğuzdoğan, E.B. Denkbaş, O.S. Kabasakal, The use of
polyethyleneglycolmethacrylate-co-vinylimidazole (PEGMA-co-VI) microspheres for the removal of nickel(II) and chromium(VI) ions, J. Hazard. Mater., 177 (2010) 119–125.
- S. Senel, L. Uzun, A. Kara, A. Denizli, Heavy metal removal
from synthetic solutions with magnetic beads under magnetic
field, J.Macromol. Sci. A, 45 (2008) 635–642.
- Z. Guan, L. Liu, L. He, S. Yang, Amphiphilic hollow carbonaceous
microspheres for the sorption of phenol from Water, J.
Hazard. Mater., 196 (2011) 270–277.
- K.K. Jaiswal, D. Manikandan, R. Murugan, A.P. Ramaswamy,
Microwave-assisted rapid synthesis of Fe3O4/poly(styrene-divinylbenzeneacrylic
acid) polymeric magnetic composites and
investigation of their structural and magnetic properties, Eur.
Polym. J., 98 (2018) 177–190.
- X. Gao, Y. Dai, Y. Zhang, F. Fu, Effective adsorption of phenolic
compound from aqueous solutions on activated semi coke, J.
Phys. Chem. Solids, 102 (2017) 142–150.
- J. Li, Q. Zhou, Y. Wu, Y. Yuan, Y. Liu, Investigation of nanoscale
zerovalent iron-based magnetic and thermal dual-responsive
composite materials for the removal and detection of phenols,
Chemosphere, 195 (2018) 472–482.
- X. Wang, H. Ou, J. Huang, One-pot synthesis of hyper-crosslinked
polymers chemically modified with pyrrole, furan, and
thiophene for phenol adsorption from aqueous solution, J. Colloid
Interf. Sci., 538 (2019) 499–506.
- D. Zhang, P. Huo, W. Liu, Behavior of phenol adsorption on
thermal modified activated carbon, Chinese J. Chem. Eng., 24
(2016) 446–452.
- X. Qiu, N. Li, X. Ma, S. Yang, Q. Xu, H. Li, J. Lu, Facile preparation
of acrylic ester-based crosslinked resin and its adsorption
of phenol at high concentration, J. Environ. Chem. Eng., 2
(2014) 745–751.
- W.P. Cheng, W. Gao, X. Cui, J.H. Ma, R.F. Li, Phenol adsorption
equilibrium and kinetics on zeolite X/activated carbon composite,
J. Taiwan Inst. Chem. E., 62 (2016) 192–198.
- E.T. Özer, B. Osman, A. Kara, N. Beşirli, Ş. Gücer, H. Sözeri,
Removal of diethyl phthalate from aqueous phase using magnetic
poly(EGDMA-VP) beads, J. Hazard. Mater., 229–230
(2012) 20–28.
- J. Feng, H. Ding, G. Yang, R. Wang, S. Li, J. Liao, Z. Li, D. Chen,
Preparation of black-pearl reduced graphene oxide–sodium
alginate hydrogel microspheres for adsorbing organic pollutants,
J. Colloid Interf. Sci., 508 (2017) 387–395.
- J. Sun, X. Liu, F. Zhang, J. Zhou, J. Wu, A. Alsaedi, T. Hayat,
J. Li, Insight into the mechanism of adsorption of phenol
and resorcinol on activated carbons with different oxidation
degrees, Colloid. Surface A, 563 (2019) 22–30.
- A. Kara, E. Demirbel, N. Tekin, B. Osman, N. Beşirli, Magnetic
vinylphenylboronic acid microparticles for Cr(VI) adsorption:
Kinetic, isotherm and thermodynamic studies, J. Hazard.
Mater., 286 (2015) 612–623.
- A. Adak, A. Pal, M. Bandyopadhyay, Removal of phenol from
water environment by surfactant-modified alumina through
adsolubilization, Colloids Surf. A: Physicochem. Eng. Asp., 277
(2006) 63–68.
- Z. Gong, S. Li, W. Han, J. Wang, J. Ma, X. Zhang, Recyclable
graphene oxide grafted with poly(N-isopropylacrylamide)
and its enhanced selective adsorption for phenols, Appl. Surf.
Sci., 362 (2016) 459–468.
- J. Han, Z. Du, W. Zou, H. Li, C. Zhang, In-situ improved phenol
adsorption at ions-enrichment interface of porous adsorbent
for simultaneous removal of copper ions and phenol, Chem.
Eng. J., 262 (2015) 571–578.
- A.H. Al-Muhtaseb, K.A. Ibrahim, A.B. Albadarin, O.
Ali-khashman, G.M. Walker, M.N.M. Ahmad, Remediation of
phenol-contaminated water by adsorption using poly(methyl
methacrylate) (PMMA), Chem. Eng. J., 168 (2011) 691–699.
- B.N. Bhadra, I. Ahmed, S.H. Jhung, Remarkable adsorbent
for phenol removal from fuel: Functionalized metal-organic
framework, Fuel, 174 (2016) 43–48.
- L. Lupa, L. Cocheci, R. Pode, I. Hulka, Phenol adsorption using
Aliquat 336 functionalized Zn-Al layered double hydroxide,
Sep. Purif. Technol., 196 (2018) 82–95.
- X. Lyu, X. You, M. He, W. Zhang, H. Wei, L. Li, Q. He, Adsorption
and molecular dynamics simulations of nonionic surfactant
on the low rank coal surface, Fuel, 211 (2018) 529–534.