References
- J. Michałowicz, Bisphenol A – sources, toxicity and biotransformation,
Environ. Toxicol. Pharmacol., 37 (2014) 738–758.
- A. Abraham, P. Chakraborty, A review on sources and health
impacts of bisphenol A, Rev. Environ. Health, 35 (2020)
201–210.
- Y. Ma, H. Liu, J. Wu, L. Yuan, Y. Wang, X. Du, R. Wang,
P.W. Marwa, P. Petlulu, X. Chen, X. Zhang, The adverse
health effects of bisphenol A and related toxicity
mechanisms, Environ. Res., 176 (2019) 108575, doi: : 10.1016/j.
envres.2019.108575.
- L. Martínková, M. Kotik, E. Marková, L. Homolka,
Biodegradation of phenolic compounds by Basidiomycota
and its phenol oxidases: a review, Chemosphere, 149 (2016)
373–382.
- M. Noszczyńska, Z. Piotrowska-Seget, Bisphenols: application,
occurrence, safety, and biodegradation mediated by bacterial
communities in wastewater treatment plants and rivers,
Chemosphere, 201 (2018) 214–223.
- M.A. Zazouli, Y. Mahdavi, E. Bazrafshan, D. Balarak,
Phytodegradation potential of bisphenol A from aqueous
solution by Azolla filiculoides. J. Environ. Health Sci. Eng.,
12 (2014) 66, doi: 10.1186/2052-336X-12-66.
- M. Umar, F. Roddick, L. Fan, H.A. Aziz, Application of ozone
for the removal of bisphenol A from water and wastewater –
a review, Chemosphere, 90 (2013) 2197–2207.
- D.P. Mohapatra, S.K. Brar, R.D. Tyagi, R.Y. Surampalli, Physicochemical
pre-treatment and biotransformation of wastewater
and wastewater sludge – fate of bisphenol A, Chemosphere,
78 (2010) 923–941.
- P.V.L. Reddy, K.-H. Kim, B. Kavitha, V. Kumar, N. Raza,
S. Kalagara, Photocatalytic degradation of bisphenol A in
aqueous media: a review, J. Environ. Manage., 213 (2018)
189–205.
- A. Bhatnagar, I. Anastopoulos, Adsorptive removal of bisphenol
A (BPA) from aqueous solution: a review, Chemosphere,
168 (2017) 885–902.
- G. Crini, E. Lichtfouse, L.D. Wilson, N. Morin-Crini,
Conventional and non-conventional adsorbents for wastewater
treatment, Environ. Chem. Lett., 17 (2019) 195–213.
- G. Skodras, Th. Orfanoudaki, E. Kakaras, G.P. Sakellaropoulos,
Production of special activated carbon from lignite for
environmental purposes, Fuel Process. Technol., 77–78 (2002)
75–87.
- G. Cheng, C.X. Zhang, X.M. Zhang, Z.L. Zhang, Preparation of
lignite-based activated carbon and its flue gas desulfurization
performance, Mater. Res. Express, 6 (2019) 025603.
- Q. He, G. Wang, Z. Chen, Z. Miao, K. Wan, S. Huang,
Adsorption of anionic azo dyes using lignite coke by one-step
short-time pyrolysis, Fuel, 267 (2020) 117140, doi: 10.1016/j.
fuel.2020.117140.
- L. Wu, C. Du, J. He, Z. Yang, H. Li, Effective adsorption of
diclofenac sodium from neutral aqueous solution by low-cost
lignite activated cokes, J. Hazard. Mater., 384 (2020) 121284,
doi: 10.1016/j.jhazmat.2019.121284.
- M.A. Nazari, F. Mohaddes, B.K. Pramanik, M. Othman,
T. Muster, M.A. Bhuiyan, Application of Victorian brown coal
for removal of ammonium and organics from wastewater,
Environ. Technol., 39 (2018) 1041–1051.
- Y. Qi, A.F.A. Hoadley, A.L. Chaffee, G. Garnier, Characterisation
of lignite as an industrial adsorbent, Fuel, 90 (2011) 1567–1574.
- A. Hassani, F. Vafaei, S. Karaca, A.R. Khataee, Adsorption of
a cationic dye from aqueous solution using Turkish lignite:
kinetic, isotherm, thermodynamic studies and neural network
modelling, J. Ind. Eng. Chem., 20 (2014) 2615–2624.
- H. Polat, M. Molva, M. Polat, Capacity and mechanism of
phenol adsorption on lignite, Int. J. Miner. Process., 79 (2006)
264–273.
- K. Kuśmierek, M. Sprynskyy, A. Świątkowski, Raw lignite
as an effective low-cost adsorbent to remove phenol and
chlorophenols from aqueous solutions, Sep. Sci. Technol.,
55 (2020) 1741–1751.
- P. Janos, H. Buchtova, M. Ryznarova, Sorption of dyes from
aqueous solutions onto fly ash, Water Res., 37 (2003) 4938–4944.
- J.C. Ge, S.K. Yoon, N.J. Choi, Application of fly ash as an
adsorbent for removal of air and water pollutants, Appl. Sci.,
8 (2018) 1116, doi: 10.3390/app8071116.
- O.S. Bello, O.A. Olusegun, V.O. Njoku, Fly ash: an alternative to
powdered activated carbon for the removal of eosin dye from
aqueous solutions, Bull. Chem. Soc. Ethiop., 27 (2013) 191–204.
- M.M. Demirkan, A.H. Aydilek, E.A. Seagren, J.C. Hower,
Naphthalene and o-xylene adsorption onto high carbon fly ash,
J. Environ. Eng., 137 (2011) 377–387.
- K. Kuśmierek, A. Świątkowski, Adsorption of 2,4-dichlorophenoxyacetic
acid from aqueous solution on fly ash, Water
Environ. Res., 88 (2016) 231–238.
- A. Terzić, L. Pavlović, L. Miličić, Evaluation of lignite fly ash for
utilization as component in construction materials, Int. J. Coal
Prep. Util., 33 (2013) 159–180.
- S. Drakonaki, E. Diamadopoulos, D. Vamvouka, M. Lahaniatis,
Leaching behavior of lignite fly ash, J. Environ. Sci. Health A,
33 (1998) 237–248.
- H. Yılmaz, Characterization and comparison of leaching
behaviors of fly ash samples from three different power
plants in Turkey, Fuel Process. Technol., 137 (2015) 240–249.
- L.C. Ram, N.K. Srivastava, R.C. Tripathi, S.K. Thakur,
A.K. Sinha, S.K. Jha, R.E. Masto, S. Mitra, Leaching behavior
of lignite fly ash with shake and column tests, Environ. Geol.,
51 (2007) 1119–1132.
- A. Karczewska, T. Chodak, J. Kaszubkiewicz, The suitability
of brown coal as a sorbent for heavy metals in polluted soils,
Appl. Geochem., 11 (1996) 343–346.
- K. Kuśmierek, M. Szala, A. Świątkowski, Adsorption of
2,4-dichlorophenol and 2,4-dichlorophenoxyacetic acid from
aqueous solution on carbonaceous materials obtained by
combustion synthesis, J. Taiwan Inst. Chem. Eng., 63 (2016)
371–378.
- K. Kuśmierek, A. Świątkowski, T. Kotkowski, R. Cherbański,
E. Molga, Adsorption of bisphenol A from aqueous solutions
by activated tyre pyrolysis char – effect of physical and
chemical activation, Chem. Process Eng-Inz., 41 (2020) 129–141.
- M.A. Al-Ghouti, D.A. Da’ana, Guidelines for the use and
interpretation of adsorption isotherm models: a review,
J. Hazard. Mater., 393 (2020) 122383.
- Y. Li, F. Jin, C. Wang, Y. Chen, Q. Wang, W. Zhang, D. Wang,
Modification of bentonite with cationic surfactant for the
enhanced retention of bisphenol A from landfill leachate,
Environ. Sci. Pollut. Res., 22 (2015) 8618–8628.
- Z.M. Lazim, T. Hadibarata, M.H. Puteh, Z. Yusop, Adsorption
characteristics of bisphenol A onto low-cost modified phytowaste
material in aqueous solution, Water Air Soil Pollut.,
226 (2015) 1–11.
- A. Tursi, E. Chatzisymeon, F. Chidichimo, A. Beneduci,
G. Chidichimo, Removal of endocrine disrupting chemicals
from water: adsorption of bisphenol-A by biobased
hydrophobic functionalized cellulose, Int. J. Environ. Res.
Public Health, 15 (2018) 2419, doi: 10.3390/ijerph15112419.
- S. Li, Y. Gong, Y. Yang, C. He, L. Hu, L. Zhu, L. Sun, D. Shu,
Recyclable CNTs/Fe3O4 magnetic nanocomposites as adsorbents
to remove bisphenol A from water and their regeneration,
Chem. Eng. J., 260 (2015) 231–239.
- P. Sudhakar, I.D. Mall, V.C. Srivastava, Adsorptive removal of
bisphenol-A by rice husk ash and granular activated carbon – a
comparative study, Desal. Water Treat., 57 (2016) 12375–12384.
- D. Balarak, Kinetics, isotherm and thermodynamics studies on
bisphenol A adsorption using barley husk, Int. J. Chem. Tech.
Res., 9 (2016) 681–690.
- Y. Zhou Y, L. Chen, P. Lu, X. Tang, J. Lu, Removal of bisphenol
A from aqueous solution using modified fibric peat as a
novel biosorbent, Sep. Purif. Technol., 81 (2011) 184–190.
- R. Acosta, D. Nabarlatz, A. Sánchez-Sánchez, J. Jagiello,
P. Gadonneix, A. Celzard, V. Fierro, Adsorption of bisphenol A
on KOH-activated tyre pyrolysis char, J. Environ. Chem. Eng.,
6 (2018) 823–833.
- D. Balarak, F.K. Mostafapour, S.M. Lee, C. Jeon, Adsorption
of bisphenol A using dried rice husk: equilibrium, kinetic and
thermodynamic studies, Appl. Chem. Eng., 30 (2019) 316–323.
- M.H. Dehghani, M. Ghadermazi, A. Bhatnagar, P. Sadighara,
G. Jahed-Khaniki, B. Heibati, G. McKay, Adsorptive removal
of endocrine disrupting bisphenol A from aqueous solution
using chitosan, J. Environ. Chem. Eng., 4 (2016) 2647–2655.
- T.B. Vidovix, E.F.D. Januário, R. Bergamasco, A.M.S. Vieira,
Bisfenol A adsorption using a low-cost adsorbent prepared
from residues of babassu coconut peels, Environ. Technol.,
(2019), doi: 10.1080/09593330.2019.1701568.