References
- M.B. Arian, T.G. Kazi, M.K. Jamali, H.I. Afridi, J.A. Baig,
N. Jablini, A.Q. Shah, Evaluation of physico-chemical
parameters of Manchar Lake water and their comparison with
other global published values, Pak. J. Anal. Environ. Chem., 9
(2008) 101–109.
- S. Sanyal, The End of Population Growth, Project Syndicate,
2011 [Online].
- UNESCO, Water for a Sustainable World, Retrieved from
Paris, 2015.
- W.S.W. Ngah, M.A.K.M. Hanafiah, Removal of heavy metal
ions from wastewater by chemically modified plant wastes
as adsorbents: a review, Bioresour. Technol., 99 (2008)
3935–3948.
- S.E. Bailey, T.J. Olin, R.M. Bricka, D.D. Adrian, A review of
potentially low-cost sorbents for heavy metals, Water Res., 33
(1999) 2469–2479.
- S. Benzer, N. Arslan, N. Uzel, A. Gül, M. Yılmaz, Concentrations
of metals in water, sediment and tissues of Cyprinus carpio L.,
1758 from Mogan Lake (Turkey), Iran. J. Fish. Sci., 12 (2013)
45–55.
- F. Moore, G. Orghani, A. Qishla, Assessment of Heavy metal
contamination in water and surface sediments of the Maharlu
saline Lake, SW Iran, Iran. J. Sci. Technol. Trans. A Sci., 33 (2009)
44–54.
- G. Sharma, B. Thakur, Mu. Naushad, A.H. Al-Muhtaseb,
A. Kumar, M. Sillanpaa, G.T. Mola, Fabrication and characterization
of sodium dodecyl sulphate@ironsilicophosphate
nanocomposite: ion exchange properties and selectivity for
binary metal ions, Mater. Chem. Phys., 193 (2017) 129–139.
- D. Pathania, G. Sharma, Mu. Naushad, A. Kumar, Synthesis
and characterization of a new nanocomposite cation exchanger
polyacrylamide Ce(IV) silicophosphate: photocatalytic and
antimicrobial applications, J. Ind. Eng. Chem., 20 (2014)
3596–3603.
- Mu. Naushad, S. Vasudevan, G. Sharma, A. Kumar,
Z.A. ALOthman, Adsorption kinetics, isotherms, and thermodynamic
studies for Hg2+ adsorption from aqueous medium
using alizarin red-S-loaded amberlite IRA-400 resin, Desal. Wat.
Treat., 57 (2016) 18551–18559.
- Md.R. Awual, Md.M. Hasan, G.E. Eldesoky, Md.A. Khaleque,
M.M. Rahman, Mu. Naushad, Facile mercury detection
and removal from aqueous media involving ligand impregnated
conjugate nanomaterials, Chem. Eng. J., 290 (2016)
243–251.
- G. Annadurai, R.S. Juang, D.J. Lee, Adsorption of heavy metals
from water using banana and orange peels, Water Sci. Technol.,
47 (2003) 185–190.
- G.P. Rao, C. Lu, F. Su, Sorption of divalent metal ions from
aqueous solution by carbon nanotubes: a review, Sep. Purif.
Technol., 58 (2007) 224–231.
- S. Sabat, R.V. Kavitha, S.L. Shantha, G. Nair, M. Ganesh,
N. Chandroth, Biosorption: an eco-friendly technique for the
removal of heavy metals, Ind. J. Appl. Res., 2 (2012) 1–8.
- Z.A. Al-Othman, R. Ali, Mu. Naushad, Hexavalent chromium
removal from aqueous medium by activated carbon prepared
from peanut shell: adsorption kinetics, equilibrium and
thermodynamic studies, Chem. Eng. J., 184 (2012) 238–247.
- V.K.K. Upadhyayula, S.G. Deng, M.C. Mitchell, G.B. Smith,
Application of carbon nanotube technology for removal of
contaminants in drinking water: a review, Sci. Total Environ.,
408 (2009) 1–13.
- J.-G. Yu, X.-H. Zhao, L.-Y. Yu, F.-P. Jiao, J.-H. Jiang, X.-Q. Chen,
Removal, recovery and enrichment of metals from aqueous
solutions using carbon nanotubes, J. Radioanal. Nucl. Chem.,
299 (2014) 1155–1163.
- N. Mubarak, J. Sahu, E. Abdullah, N. Jayakumar, Removal of
heavy metals from wastewater using carbon nanotubes, Sep.
Purif. Rev., 43 (2014) 311–338.
- X. Ren, C. Chen, M. Nagatsu, X. Wang, Carbon nanotubes as
adsorbents in environmental pollution management: a review,
Chem. Eng. J., 170 (2011) 395–410.
- M.E. Milanesio, M.B. Spesia, M.P. Cormick, E.N. Durantini,
Mechanistic studies on the photodynamic effect induced by
a dicationic fullerene C60 derivative on Escherichia coli and
Candida albicans cells, Photodiagn. Photodyn. Ther., 10 (2013)
320–327.
- X. Tao, Y. Yu, J.D. Fortner, Y. He, Y. Chen, J.B. Hughes, Effects
of aqueous stable fullerene nanocrystal (nC60) on Scenedesmus
obliquus, Chemosphere, 122 (2014) 162–167.
- Q. Liu, Q. Cui, X.J. Li, L. Jin, The applications of
buckminsterfullerene C60 and derivatives in orthopaedic
research, Connect. Tissue Res., 55 (2014) 71–79.
- A. Hirsch, C. Bellavia-Lund, C60s and Related Structures,
A. Hirsch Eds., Springer Publications, Berlin, 1993.
- Q.-H. Weng, Q. He, T. Liu, H.-Y. Huang, J.-H. Chen,
Z.-Y. Gao, L.-S. Zheng, Simple combustion production and
characterization of octahydro
- fullerene with a non-IPR C60
cage, J. Am. Chem. Soc., 132 (2010) 15093–15095.
- Y. Chai, T. Guo, C. Jin, R.E. Haufler, L.F. Chibante, J. Fure, R.E.
Smalley, C60s with metals inside, J. Phys. Chem., 95 (1991)
7564–7568.
- H. Paloniemi, T. Aaritalo, T. Laiho, H. Liuke, N. Kocharova,
K. Haapakka, F. Terzi, R. Seeber, J. Lukkari, Water-soluble
full-length single-wall carbon nanotube polyelectrolytes:
preparation and characterization, J. Phys. Chem. B, 109 (2005)
8634–8642.
- L D. E. Luzzi, B. W. Smith, and M. Monthioux., Encapsulated
C60 in carbon nanotubes, Nature , 396(1998) 323–324.
- A.B. Bourlinos, V. Georgakilas, A. Bakandritsos, A. Kouloumpis,
D. Gournis, R. Zbori, Aqueous-dispersible fullerol-carbon
nanotube hybrids, Mater. Lett., 82 (2012) 48–50.
- en.wikipedia.org/wiki/Solubility_table, 2018.
- D.D. Amarendra, P.D. Shashi, G. Krishna, S. Mika, Strengthening
adsorptive amelioration: isotherm modeling in liquid phase
surface complexation of Pb (II) and Cd (II) ions, Desalination,
267 (2010) 25–33.
- A.B. Albadarin, M.N. Collins, Mu. Naushad, S. Shirazian,
G. Walker, C. Mangwandi, Activated lignin-chitosan extruded
blends for efficient adsorption of methylene blue, Chem. Eng.
J., 307 (2017) 264–272.
- A. Farah, P. John, A. Iqbal, Microbes and Microbial Technology:
Agricultural and Environmental Applications, Springer
Publications, New York, 2011.
- Y.S. Ho, G. McKay, Competitive sorption of copper and nickel
ions from aqueous solution using peat, Adsorption, 5 (1999a)
409–417.
- R. Prabakaran, S. Arivoli, Biosorption of ferrous ion from
aqueous solutions by using activated carbon prepared from
Thespesia populnea bark, Arch. Appl. Sci. Res., 3 (2011) 218–232.
- K.G. Bhattacharyya, A. Sharma, Adsorption of Pb(II) from
aqueous solution by Azadirachta indica (neem) leaf powder,
J. Hazard. Mater., B,113 (2004) 97–109.
- T.M. Elmorsi, Equilibrium isotherms and kinetic studies of
removal of methylene blue dye by adsorption onto miswak
leaves as a natural adsorbent, J. Environ. Prot., 2 (2011) 817–827.
- H.M.F. Freundlich, Over the adsorption in solution, Phys.
Chem., 57 (1906) 385–471.
- M.M. Dubinin, L.V. Radushkevich, The equation of the
characteristic curve of activated charcoal, Proceedings of the
Academy of Sciences, Phys. Chem. Sec., 55 (1947) 331–337.
- W. Rondon, D. Freire, Z. de Benzo, A.B. Sifontes, Y. González,
M. Valero, J.L. Brito, Application of 3A zeolite prepared from
venezuelan kaolin for removal of Pb (II) from wastewater and
its determination by flame atomic absorption spectrometry,
Am. J. Anal. Chem., 4 (2013) 584–593.
- H. Chen, J. Zhao, G. Dai, J. Wu, H. Yan, Adsorption characteristics
of Pb(II) from aqueous solution onto a natural biosorbent,
fallen Cinnamomum camphora leaves, Desalination, 262 (2010)
174–182.
- A.N. Siyal, S.Q. Memon, M.I. Khaskheli, Optimization and
equilibrium studies of Pb(II) removal by Grewia Asiatica seed:
a factorial design approach, Pol. J. Chem. Technol., 14 (2012)
71–77.
- S.N. Dash, R. Murthy, Preparation of carbonaceous heavy metal
adsorbent from Shorea robusta leaf litter using phosphoric acid
impregnation, Environ. Sci., 1 (2010) 296–313.
- M. Ghasemi, Mu. Naushad, N. Ghasemi, Y. Khosravi-Fard,
Adsorption of Pb(II) from aqueous solution using new
adsorbents prepared from agricultural waste: adsorption
isotherm and kinetic studies, J. Ind. Eng. Chem., 20 (2014)
2193–2199.
- Mu. Naushad, Surfactant assisted nano-composite cation
exchanger: development, characterization and applications
for the removal of toxic Pb2+ from aqueous medium, J. Chem.
Eng., 235 (2014) 100–108.
- Mu. Naushad, Z.A. ALOthman, Md.R. Awual, M.M. Alam,
G.E. Eldesoky, Adsorption kinetics, isotherms, and thermodynamic
studies for the adsorption of Pb2+ and Hg2+ metal
ions from aqueous medium using Ti(IV) iodovanadate cation
exchanger, Ionics, 21 (2015) 2237–2245.
- M. Ghasemi, Mu. Naushad, N. Ghasemi, Y. Khosravi-Fard,
A novel agricultural waste based adsorbent for the removal
of Pb(II) from aqueous solution: kinetics, equilibrium and
thermodynamic studies, Ind. Eng. Chem., 20 (2014) 454–461.
- A. Mittal, Mu. Naushad, G. Sharma, Z.A. ALothman,
S.M. Wabaidur, M. Alam, Fabrication of MWCNTs/ThO2
nanocomposite and its adsorption behavior for the removal
of Pb(II) metal from aqueous medium, Desal. Wat. Treat.,
57 (2016) 21863–21869.
- R. Bushra, Mu. Naushad, R. Adnan, M.N.M. Brahim,
M. Rafatullah, Polyaniline supported nanocomposite cation
exchanger: synthesis, characterization and applications for the
efficient removal of Pb2+ ion from aqueous medium, Ind. Eng.
Chem., 21 (2015) 1112–1118.
- Y. Gutha, V.S. Munagapati, Mu. Naushad, K. Abbur, Removal
of Ni(II) from aqueous solution by Lycopersicum esculentum
(tomato) leaf powder as a low-cost biosorbent, Desal. Wat.
Treat., 54 (2015) 200–208.
- M.A. Shavandi, Z. Haddadian, M.H. Ismail, S.N. Abdullah,
Z.Z. Abidin, Continuous metal and oil removal from palm oil
mill effluent using natural zeolite-packed column, J. Taiwan
Inst. Chem. Eng., 43 (2012) 934–941.
- Y.S. Ho, G. McKay, The sorption of lead(II) ions on peat,
Water Res., 33 (1999) 578–584.
- T.W. Weber, R.K. Chatravorti, Pore and solid diffusion models
for fixed-bed adsorbers, J. Am. Inst. Chem. Eng., 20 (1974)
228–238.
- AG. Ritchie, Alternative to the Elovich equation for the kinetics
of adsorption of gases on solids, Faraday Trans., 73 (1977)
1650–1653.