References
- M. Ilyas, W. Ahmad, H. Khan, S. Yousaf, M. Yasir, A. Khan,
Environmental and health impacts of industrial wastewater
effluents in Pakistan: a review, Rev. Environ. Health, 34 (2019)
171–186.
- K.A. Kaushik, S.J. Dalal, S. Panwar, Impact of industrialization
on culture of Uttarakhand and its role on career enhancement,
VSRD Int. J. Bus Manage. Res., 2 (2012) 123–132.
- EPA. Constructed wetlands for wastewater treatment and
wildlife habitat, (1993). Available from http://www.epa.gov/owow/wetlands/construct.
- M. McCasland, N.M. Trautmann, R.J. Wagenet, Nitrate: Health
effects in drinking water, (1985). Available from http://pmep.cee.comell.edu/facts.slides–self/facts/nit-heefgrw85.
- E.A. El-Sharkawy, Adsorption of textile dyes on to activated
carbons synthesized from solid waste: decolourizing power in
relation to surface properties, Adsorpt. Sci. Technol., 19 (2001)
795–811.
- S. Chaudhari, V. Tare, Removal and recovery of heavy metals
from simulated wastewater using insoluble starch Xanthate
process, Pract. Period Hazard Toxic. Radioact. Waste Manage.,
12 (2008) 170–180.
- B.M. Braukman, Industrial solutions amenable to biosorption,
in: B. Volesky (Ed.), Biosorption of Heavy Metals, CRC Press,
USA. (1990) pp. 51–64.
- K. Shekhawat, S. Chatterjee, B. Joshi, Chromium toxicity and its
health hazards, Int. J. Adv. Res., 3 (2015) 167–172.
- J.W. Ball, J.A. Izbicki, Occurrence of hexavalent chromium in
ground water in the western Mojave Desert, California, Appl.
Geochem., 19 (2004) 1123–1135.
- D. Fantoni, G. Brozzo, M. Canepa, F. Cipolli, L. Marini, G. Ottonello,
M. Zuccolini, Natural hexavalent chromium in groundwaters
interacting with ophiolitic rocks, Environ. Geol., 42 (2002) 871–882.
- F.N. Azad, M. Ghaedi, K. Dashtian, A. Jamshidi, G. Hassani,
M. Montazerozohori, S. Hajati, M. Rajabi, A.A. Bazrafshan,
Preparation and characterization of an AC–Fe3O4–Au hybrid
for the simultaneous removal of Cd2+, Pb2+, Cr3+ and Ni2+ ions
from aqueous solution via complexation with 2-((2, 4-dichlorobenzylidene)-amino)-benzenethiol: Taguchi optimization, RSC
Adv., 6 (2016) 19780–19791.
- L.S. Thakur, M. Parmar, Adsorption of heavy metal (Cu2+, Ni2+
and Zn2+) from synthetic waste water by tea waste adsorbent,
Int. J. Chem. Phys. Sci., 2 (2013) 6–19.
- P. Parker, Encyclopaedia of Environmental Science, 2nd ed.,
McGraw Hill, NewYork, 1980.
- M. Sitting, Toxic Metals—Pollution Control and Worker
Protection, Noyes Data Corporation, New Jersey, 1976.
- K. Kadirvelu, Preparation and characterization of activated
carbon, from coir pith and its application to metal bearing
wastewater, Ph.D. Thesis, Bharathiar University, Coimbatore,
India, 1998.
- S. Yang, X. Ren, G. Zhao, W. Shi, G. Montavon, B. Grambow, X.
Wang, Competitive sorption and selective sequence of Cu (II)
and Ni (II) on montmorillonite: batch, modeling, EPR and XAS
studies, Geochim. Cosmochim. Acta, 166 (2015) 129–145.
- E. Eren, Removal of copper ions by modified Unye clay, Turkey,
J. Hazard. Mater., 159 (2008) 235–244.
- J.H. Potgieter, S.S. Potgieter-Vermaak, P.D. Kalibantonga, Heavy
metals removal from solution by palygorskite clay, Miner Eng.,
19 (2006) 463–470.
- R. Camarillo, Á. Pérez, P. Cañizares, A. de Lucas, Removal of
heavy metal ions by polymer enhanced ultrafiltration: batch
process modeling and thermodynamics of complexation
reactions, Desalination, 286 (2012) 193–199.
- R. Aravindhan, B. Madhan, J.R. Rao, B.U. Nair, T. Ramasami,
Bioaccumulation of chromium from tannery wastewater: an
approach for chrome recovery and reuse, Environ. Sci. Technol.,
38 (2004) 300–306.
- J.J. Testa, M.A. Grela, M.I. Litter, Heterogeneous photocatalytic
reduction of chromium (VI) over TiO2 particles in the presence
of oxalate: involvement of Cr (V) species, Environ. Sci. Technol.,
38 (2004) 1589–1594.
- C.A. Kozlowski, W. Walkowiak, Removal of chromium (VI)
from aqueous solutions by polymer inclusion membranes,
Water Res., 36 (2002) 4870–4876.
- V.K. Gupta, A.K. Shrivastava, N. Jain, Biosorption of chromium
(VI) from aqueous solutions by green algae Spirogyra species,
Water Res., 35 (2001) 4079–4085.
- H.F. Shaalan, M.H. Sorour, S.R. Tewfik, Simulation and
optimization of a membrane system for chromium recovery
from tanning wastes, Desalination, 141 (2001) 315–324.
- J.C. Seaman, P.M. Bertsch, L. Schwallie, In situ Cr (VI)
reduction within coarse-textured, oxide-coated soil and
aquifer systems using Fe (II) solutions, Environ. Sci. Technol.,
33 (1999) 938–944.
- S.K. Srivastava, V.K. Gupta, D. Mohan, Removal of lead and
chromium by activated slag—a blast-furnace waste, J. Environ.
Eng., 123 (1997) 461–468.
- D. Petruzzelli, R. Passino, G. Tiravanti, Ion exchange process
for chromium removal and recovery from tannery wastes, Ind.
Eng. Chem. Res., 34 (1995) 2612–2617.
- S. Schiewer, S.B. Patil, Modeling the effect of pH on biosorption
of heavy metals by citrus peels, J. Hazard. Mater., 157 (2008)
8–17.
- J. Wu, Y. Wei, J. Lin, S. Lin, Study on starch-graft-acrylamide/mineral powder superabsorbent composite, Polymer, 44 (2003)
6513–6520.
- W.F. Lee, Y.C. Chen, Effect of intercalated reactive mica on
water absorbency for poly (sodium acrylate) composite
superabsorbents, Eur. Polym. J., 41 (2005) 1605–1612.
- K. Ibrahim, H. Khoury, Use of natural chabazite–phillipsite tuff
in wastewater treatment from electroplating factories in Jordan,
Environ. Geol., 41 (2002) 547–551.
- L. Monser, N. Adhoum, Modified activated carbon for
the removal of copper, zinc, chromium and cyanide from
wastewater, Sep. Purif. Technol., 26 (2002) 137–146.
- V. Sarin, K. Pant, Removal of chromium from industrial waste
by using eucalyptus bark, Bioresour. Technol., 97 (2006) 15–20.
- Y. Kong, J. Wei, Z. Wang, T. Sun, C. Yao, Z. Chen, Heavy metals
removal from solution by polyaniline/palygorskite composite,
J. Appl. Polym. Sci., 122 (2011) 2054–2059.
- M. Kobya, E. Demirbas, E. Senturk, M. Ince, Adsorption of
heavy metal ions from aqueous solutions by activated carbon
prepared from apricot stone, Bioresour. Technol., 96 (2005)
1518–1521.
- A. Sarı, M. Tuzen, D. Cıtak, M. Soylak, Adsorption characteristics
of Cu (II) and Pb (II) onto expanded perlite from aqueous
solution, J. Hazard. Mater., 148 (2007) 387–394.
- H. Chen, Y. Zhao, A. Wang, Removal of Cu (II) from aqueous
solution by adsorption onto acid-activated palygorskite, J.
Hazard. Mater., 149 (2007) 346–354.
- S.M. Xu, J. Wei, S. Feng, J.D. Wang, X.S. Li, A study in the
adsorption behaviors of Cr (VI) on crosslinked cationic starches,
J. Polym. Res., 11 (2004) 211–215.
- R.S. Chauhan, S. Gopinath, P. Razdan, C. Delattre, G.S. Nirmala,
R. Natarajan, Thermal decomposition of expanded polystyrene
in a pebble bed reactor to get higher liquid fraction yield at low
temperatures, Waste Manage., 28 (2008) 2140–2145.
- K. Saido, K. Amamiya, H. Sato, A. Okabe, N. Ogawa, Y. Kamaya,
T. Kusui, Analysis of styrene oligomer contaminants generated
from marine debris polystyrene on the coast of Okinawa,
Bunseki Kagaku/Japan Analyst, 61 (2012).
- M. Ilyas, W. Ahmad, H. Khan, S. Yousaf, K. Khan, S. Nazir,
Plastic waste as a significant threat to environment–a systematic
literature review, Rev. Environ. Health, 33 (2018) 383–406.
- R. Donat, A. Akdogan, E. Erdem, H. Cetisli, Thermodynamics
of Pb2+ and Ni2+ adsorption onto natural bentonite from aqueous
solutions, J. Colloid Interface Sci., 286 (2005) 43–52.
- Y.S. Ho, G. McKay, Sorption of dye from aqueous solution by
peat, Chem. Eng. J., 70 (1998) 115–124.
- S. Chen, J. Zhang, C. Zhang, Q. Yue, Y. Li, C. Li, Equilibrium and
kinetic studies of methyl orange and methyl violet adsorption
on activated carbon derived from Phragmites australis,
Desalination, 252 (2010) 149–156.
- M. Lawrinenko, Anion exchange capacity of biochar, Graduate
theses, Iowa State University, 2014.
- Y. Yao, B. Gao, J. Fang, M. Zhang, H. Chen, Y. Zhou, L. Yang,
Characterization and environmental applications of clay–biochar composites, Chem. Eng. J., 242 (2014) 136–143.
- M. Edge, R. Wiles, N.S. Allen, W.A. McDonald, S.V. Mortlock,
Characterisation of the species responsible for yellowing in melt
degraded aromatic polyesters—I: Yellowing of poly (ethylene
terephthalate), Polym. Degrad. Stab., 53 (1996) 141–151.
- T.M. Piqué, A. Vázquez, Uso de EspectroscopíaInfrarroja con
Transformada de Fourier (FTIR) en el estudio de la hidratación
del cemento. Concreto y cement, Investigación y desarrollo, 3
(2012) 62–71.
- R.M. Silverstein, F.X. Webster, 13C NMR spectrometry.
Spectrometric identification of organic compounds, 1998, pp.
217–249.
- M.A. Tantawy, M.R. Shatat, A.M. El-Roudi, M.A. Taher, M. Abd-El-Hamed, Low temperature synthesis of belite cement based
on silica fume and lime, Int. Sch. Res. Notices, (2014) 1–10,
http://dx.doi.org/10.1155/2014/873215.
- M. Chollet, M. Horgnies, Analyses of the surfaces of concrete
by Raman and FT-IR spectroscopies: comparative study of
hardened samples after demoulding and after organic post
treatment, Surf. Interface Anal., 43 (2011) 714–725.
- V. Herman, H. Takacs, F. Duclairoir, O. Renault, J.H. Tortai,
B. Viala, Core double–shell cobalt/graphene/polystyrene
magnetic nanocomposites synthesized by in situ sonochemical
polymerization, RSC Adv., 5 (2015) 51371–51381.
- M. Subramani, U. Sepperumal. FTIR analysis of bacterial
mediated chemical changes in Polystyrene foam, Ann. Biol.
Res., 7 (2016) 55–61.
- D. Suteu, M. Badeanu, T. Malutan, A.I. Chirculescu,
Valorization of food wastes (orange seeds) as adsorbent for dye
retention from aqueous medium, Desal. Wat. Treat., 57 (2016)
29070–29081.
- A. Ahmadpour, M. Tahmasbi, T.R. Bastami, J.A. Besharati,
Rapid removal of cobalt ion from aqueous solutions by almond
green hull, J. Hazard. Mater., 30 (2009) 925–930.
- H. Liu, S. Liang, J. Gao, H.H. Ngo, W. Guo, Z. Guo, J. Wang,
Y. Li, Enhancement of Cr (VI) removal by modifying activated
carbon developed from Zizania caduciflora with tartaric acid during
phosphoric acid activation, Chem. Eng. J., 246 (2014) 168–174.
- S. Athapaththu, A comprehensive study of Cd (II) removal
from aqueous solution via adsorption and solar photocatalysis,
Electronic Thesis and Dissertation Repository, vol. 19 (2013) p.
1783.
- K.G. Bhattacharyya, S.S Gupta, Pb (II) uptake by kaolinite
and montmorillonite in aqueous medium: influence of acid
activation of the clays, Colloids Surf. A Physicochem. Eng. Asp.,
277 (2006) 191–200.
- C.L. Massocatto, E.C. Paschoal, N. Buzinaro, T.F. Oliveria, C.R.T.
Tarley, J. Caetano, K.M. Diniz, Preparation and evaluation of
kinetics and thermodynamics studies of lead adsorption onto
chemically modified banana peels, Desal. Wat. Treat., 51 (2013)
5682–5691.
- A. Saeed, M. Iqbal, M.W. Akhtar, Removal and recovery of lead
(II) from single and multimetal (Cd, Cu, Ni, Zn) solutions by
crop milling waste (black gram husk), J. Hazard. Mater., 117
(2005) 65–73.
- Z. Melichová, L. Hromada, Adsorption of Pb2+ and Cu2+ ions
from aqueous solutions on natural bentonite, Pol. J. Environ.
Stud., 22 (2013) 457–464.
- S.Y. Wang, Y.K. Tang, K. Li, Y.Y. Mo, H.F. Li, Z.Q. Gu, Combined
performance of biochar sorption and magnetic separation
processes for treatment of chromium-contained electroplating
wastewater, Bioresour. Technol., 174 (2014) 67–73.
- P. Yuan, M. Fan, D. Yang, H. He, D. Liu, A. Yuan, T. Chen,
Montmorillonite-supported magnetite nanoparticles for the
removal of hexavalent chromium [Cr (VI)] from aqueous
solutions, J. Hazard. Mater., 166 (2009) 821–829.
- H. Niu, X.S. Xu, J.H. Wang, B. Volesky, Removal of lead from
aqueous solutions by Penicillium biomass, Biotechnol. Bioeng.,
42 (1993) 785–787.
- W.M. Antunes, A.S. Luna, C.A. Henriques, A.C.A. da Costa, An
evaluation of copper biosorption by a brown seaweed under
optimized conditions, Electron. J. Biotechnol., 6 (2003) 174–184.
- H. Tounsadi, A. Khalidi, M. Abdennouri, N. Barka, Biosorption
potential of Diplotaxis harra and Glebionis coronaria L. biomasses
for the removal of Cd (II) and Co (II) from aqueous solutions, J.
Environ. Chem. Eng., 3 (2015) 822–830.
- M. Rahman, K.V. Sathasivam, Heavy metal adsorption onto
Kappaphycus sp. from aqueous solutions: the use of error
functions for validation of isotherm and kinetics models,
Biomed. Res. Int., 2015 (2015) 1–13.
- W.M. Ibrahim, Biosorption of heavy metal ions from aqueous
solution by red macroalgae, J. Hazard. Mater., 192 (2011)
1827–1835.
- K.G. Bhattacharyya, S.S. Gupta, Kaolinite, montmorillonite, and
their modified derivatives as adsorbents for removal of Cu (II)
from aqueous solution, Sep. Purif. Technol., 50 (2006) 388–397.
- M. Hamidpour, M. Kalbasi, M. Afyuni, H. Shariatmadari,
G. Furrer, Sorption of lead on Iranian bentonite and zeolite:
kinetics and isotherms, Environ. Earth Sci., 62 (2011) 559–568.
- W. Konicki, I. Pełech, E. Mijowska, I. Jasińska, Adsorption of
anionic dye Direct Red 23 onto magnetic multi-walled carbon
nanotubes-Fe3C nanocomposite: kinetics, equilibrium and
thermodynamics, Chem. Eng. J., 210 (2012) 87–95.
- V.K. Gupta, C. Jain, I. Ali, M. Sharma, V. Saini, Removal of
cadmium and nickel from wastewater using bagasse fly ash—a
sugar industry waste, Water Res., 37 (2003) 4038–4044.