References
- R.B. Nessima, A.R. Bassiouny, H.R. Zakia, M.N. Moawada,
K.M. Kandeel, Biosorption of lead and cadmium using marine
algae, Chem. Ecol., 27 (2011) 579–594.
- R. Sudha, K. Srinivasan, Nickel(II) removal using modified
Citrus limettioides peel, Int. J. Environ. Sci. Technol., 12 (2015)
3993–4004.
- O. Olasunkanmi, A.E. Okoronkwo, A.F. Aiyesanmi, E.F. Olasehinde,
T.S. Adepoju, Biosorption of cadmium(II) and
chromium(VI) from aqueous solution by chemically modified
Tithonia diversyfolia biomass, J. Am. Sci., 10 (2014) 10–18.
- M.A. Hossain, H. Ngo, W.S. Guo, T.V. Nguyen, Removal
of copper from water by adsorption onto banana peel as
bioadsorbent, Int. J. Geomate, 2 (2012) 227–234.
- A.U. Rajapaksha, S.S. Chen, D.C.W. Tsang, M. Zhang,
M. Vithanage, S. Mandal, B. Gao, N.S. Bolan, Y.S. Ok, Engineered/designer biochar for contaminant removal/immobilization from
soil and water: potential and plication of biochar modification,
Chemosphere, 148 (2016) 276–291.
- A.H. Omidi, M. Cheraghi, B. Lorestani, S. Sobhanardakani,
A. Jafari, Biochar obtained from cinnamon and cannabis as
effective adsorbents for removal of lead ions from water,
Environ. Sci. Pollut. Res., 26 (2019) 27905–27914.
- A.A. Abdelhafez, J. Li, Removal of Pb(II) from aqueous solution
by using biochars derived from sugar cane bagasse and orange
peel, J. Taiwan Inst. Chem. Eng., 61 (2016) 367–375.
- J. Shang, M. Zong, Y. Yu, X. Kong, Q. Du, Q. Liao, Removal
of chromium(VI) from water using nanoscale zerovalent
iron particles supported on herb-residue biochar, J. Environ.
Manage., 197 (2017) 331–337.
- M.I. Inyang, B. Gao, Y. Yao, Y. Xue, A. Zimmerman, A. Mosa,
P. Pullammanappallil, Y.S. Ok, X. Cao, A review of biochar as a
low-cost adsorbent for aqueous heavy metal removal, Crit. Rev.
Environ. Sci. Technol., 46 (2016) 406–433.
- H. Deveci, Y. Kar, Adsorption of hexavalent chromium from
aqueous solutions by biochars obtained during biomass
pyrolysis, J. Ind. Eng. Chem., 19 (2013) 190–196.
- J. Pan, J. Jiang, R. Xu, Adsorption of Cr(III) from acidic solutions
by crop straw derived biochars, J. Environ. Sci., 25 (2013)
1957–1965.
- S. Shenbagavalli, S. Mahimairaja, Production and characterization
of biochar from different biological wastes, Int. J.
Plant Agric. Sci., 2 (2012) 2231–4490.
- C. Vargas, F.B. Pedro, J. Agerda, E. Castillo, Bio adsorption
using compost: an alternative for removal of chromium(VI)
from aqueous solutions, Bioresources, 7 (2012) 2711–2727.
- M. Anbia, M. Haqshenas, Adsorption studies of Pb(II) and
Cu(II) ions on mesoporous carbon nitride functionalized with
melamine-based dendrimer amine, Int. J. Environ. Sci. Technol.,
12 (2015) 2649–2664.
- W.P. Putra, A. Kamari, S. Najiah M. Yusoff, C.F. Ishak, A.
Mohamed, N. Hashim, I.M. Isa, Biosorption of Cu(II), Pb(II)
and Zn(II) ions from aqueous solutions using selected
waste materials: adsorption and characterization studies,
J. Encapsulation Adsorpt. Sci., 4 (2014) 25–35.
- A. Gupta, R. Yadav, P. Devi, Removal of hexavalent chromium
using activated coconut shell and activated coconut coir as low
cost adsorbent, J. Inst. Integr. Omics Appl. Biotechnol., 2 (2011)
8–12.
- R. Gill, Q. Nadeem, R. Nadeem, R. Nazir, S. Nawaz, Biosorption
capacity of vegetable waste biomass for adsorption of lead
and chromium, J. Biodivers. Environ. Sci., 5 (2014) 306–317.
- J. Datta, U. Mishra, S. Chakraborty, Removal of chromium by
column study using tea factory waste as adsorbent, Int. J. Civil
Environ. Eng., 35 (2013) 1127–1136.
- A.B. Albadarin, C. Mangwandi, A.H. Al-Muhtaseb, G.M. Walker,
S.J. Allen, M.N.M. Ahmad, Modelling and fixed bed column
adsorption of Cr(VI) onto orthophosphoric acid-activated
lignin, Chin. J. Chem. Eng., 20 (2012) 469–477.
- A.A. Werkneh, N.G. Habtu, H.D. Beyene, Removal of
hexavalent chromium from tannery wastewater using activated
carbon primed from sugarcane bagasse: adsorption/desorption
studies, Am. J. Appl. Chem., 2 (2014) 128–135.
- G. Singh, T. Senapati, D. Prakash, N. Baba, Study on
cadmium(II) biosorption by water hyacinth biomass, Int. J. Civil
Eng., 3 (2016) 152–154.
- L. Wang, Z. Chen, J. Yang, F. Ma, Pb biosorption by compound
bioflocculant: performance and mechanism, Desal. Water Treat.,
53 (2015) 421–429.
- K.G. Vinod, A. Rastogi, A. Nayak, Adsorption studies on the
removal of hexavalent chromium from aqueous solution using
a low cost fertilizer industry waste material, J. Colloid Interface
Sci., 341 (2010) 135–141.
- S. Akar, B. Lorestani, S. Sobhanardakani, M. Cheraghi,
O. Moradi, Surveying the efficiency of Platanus orientalis bark as
biosorbent for Ni and Cr(VI) removal from plating wastewater
as a real sample, Environ. Monit. Assess., 191 (2019) 373,
doi: 10.1007/s10661-019-7479-z.
- M. El Batouti, A.-M.M. Ahmed, Adsorption kinetics of nickel(II)
onto activated carbon prepared from natural adsorbent rice
husk, Int. J. Technol. Enhancements Emerging Eng. Res.,
2 (2014) 145–148.
- S. Sobhanardakani, R. Zandipak, 2,4-Dinitrophenylhydrazine
functionalized sodium dodecyl sulfate-coated magnetite
nanoparticles for effective removal of Cd(II) and Ni(II) ions
from water samples, Environ. Monit. Assess., 187 (2015) 4635,
doi: 10.1007/s10661-015-4635-y.
- S. Sobhanardakani, R. Zandipak, Synthesis and application of
TiO2/SiO2/Fe3O4 nanoparticles as novel adsorbent for removal of
Cd(II), Hg(II) and Ni(II) ions from water samples, Clean Technol.
Environ. Policy, 19 (2017), doi: 10.1007/s10098–017–1374–5.
- Q. Cheng, Q. Huang, S. Khan, Y. Liu, Z. Liao, G. Li, Y.S. Ok,
Adsorption of Cd by peanut husks and peanut husk biochar
from aqueous solutions, Ecol. Eng., 87 (2016) 240–245.
- S. Dowlatshahi, A.R.H. Torbati, M. Loloei, Adsorption of
copper, lead and cadmium from aqueous solutions by activated
carbon prepared from saffron leaves, Environ. Health Eng.
Manage. J., 1 (2014) 37–44.
- S. Chowdhury, M. Yasin, M.T. Uddin, M.A. Islam, Batch and
continuous (fixed bed column) adsorption of methylene blue
by rubber leaf powder, Int. J. Integr. Sci. Technol., 2 (2016)
24–28.
- J. Mao, S.W. Won, K. Vijayaraghavan, Y.S. Yun, Immobilized
citric acid-treated bacterial biosorbents for the removal of
cationic pollutants, Chem. Eng. J., 162 (2010) 662–668.
- S. Arivoli, V. Marimuthu, T. Ravichandran, M. Hema, Kinetics,
equilibrium and mechanistic studies of nickel adsorption on a
low cost activated calcite powder, Indian J. Sci. Res. Technol.,
1 (2012) 41–49.
- C. Sukumar, V. Janaki, S.K. Kannan, V. Shanthi, Biosorption
of chromium(VI) using Bacillus subtilis SS-1 isolated from soil
samples of electroplating industry, Clean Technol. Environ.
Policy, 16 (2014) 405–413.
- C.A. Rozaini, K. Jain, C.W. Oo, K.W. Tan, L.S. Tan, A. Azraa,
K.S. Tong, Optimization of nickel and copper ions removal by
modified mangrove barks, Int. J. Chem. Eng. Appl., 1 (2010)
84–89.
- L.H. Huang, Y.Y. Sun, T. Yang, L. Li, Adsorption behavior of
Ni(II) on lotus stalks derived active carbon by phosphoric acid
activation, Desalination, 268 (2011) 12–19.
- S. Das, Biosorption of chromium and nickel by dried biomass
of cyanobacterium Oscillatoria laete-virens, Int. J. Environ.
Sci., 3 (2012) 341–352, doi: 10.6088/ijes.2012030131032.
- P. Boruah, A. Sarma, K.G. Bhattacharyya, Removal of Ni(II) ions
from aqueous solution by using low cost biosorbent prepared
from jackfruit (Artocarpus heterophyllus) leaf powder, Indian J.
Chem. Technol., 22 (2015) 322–327.
- A. Boudaoud, M. Djedid, M. Benalia, C. Ad, N. Bouzar,
H. Elmsellem, Removal of nickel(II) and cadmium(II) ions from
wastewater by palm fibers, Chem. Chem. Eng. Biotechnol. Food
Ind., 18 (2017) 391–406.
- S. Akar, B. Lorestani, S. Sobhanardakani, M. Cheraghi,
O. Moradi, Surveying the efficiency of Platanus orientalis bark as
biosorbent for Ni and Cr(VI) removal from plating wastewater
as a real sample, Environ. Monit. Assess., 191 (2019) 373, https://
doi.org/10.1007/s10661-019-7479-z.
- C. Cheng, J.N. Wang, X. Yang, A.M. Li, C. Philippe, Adsorption
of Ni(II) and Cd(II) from water by novel chelating sponge and
the effect of alkali-earth metal ions on the adsorption, J. Hazard.
Mater., 264 (2014) 332–341.
- X.Y. Guo, B. Du, Q. Wei, J. Yang, L.H. Hu, L.G. Yan,
W.Y. Xu, Synthesis of amino functionalized magnetic
graphenes composite material and its application to remove
Cr(VI), Pb(II), Hg(II), Cd(II) and Ni(II) from contaminated
water, J. Hazard. Mater., 278 (2014) 211–220.
- M. Li, M.-y. Li, C.-g. Feng, Q.-x. Zeng, Preparation and
characterization of multi-carboxyl-functionalized silica gel
for removal of Cu(II), Cd(II), Ni(II) and Zn(II) from aqueous
solution, Appl. Surf. Sci., 314 (2014) 1063–1069.
- H. Karami, Heavy metal removal from water by magnetite
nanorods, Chem. Eng. J., 219 (2013) 209–216.
- C.-Y. Chen, C.-L. Chiang, C.-R. Chen, Removal of heavy metal
ions by a chelating resin containing glycine as chelating groups,
Sep. Purif. Technol., 54 (2007) 396–403.
- V.C. Srivastava, I.D. Mall, I.M. Mishra, Equilibrium modelling
of single and binary adsorption of cadmium and nickel onto
bagasse fly ash, Chem. Eng. J., 117 (2006) 79–91.
- V.K. Gupta, A.N. Suhas, S. Agarwal, M. Chaudhary, I. Tyagi,
Removal of Ni(II) ions from water using scrap tire, J. Mol. Liq.,
190 (2014) 215–222.
- M. Kapur, M.K. Mondal, Competitive sorption of Cu(II) and
Ni(II) ions from aqueous solutions: kinetics, thermodynamics
and desorption studies, J. Taiwan Inst. Chem. Eng., 45 (2014)
1803–1813.
- P. Bartczak, M. Norman, Ł. Klapiszewski, N. Karwańska,
M. Kawalec, M. Baczyńska, M. Wysokowski, J. Zdarta,
F. Ciesielczyk, T. Jesionowski, Removal of nickel(II) and lead(II)
ions from aqueous solution using peat as a low-cost adsorbent:
a kinetic and equilibrium study, Arabian J. Chem., 11 (2018)
1209–1222.
- C. Lib, H. Wang, Y. Zhang, Pb(II) removal from aqueous solution
by cold KOH activated biochar of camphor leaves: isotherms,
kinetics and thermodynamics, Desal. Water Treat., 161 (2019)
327–336.
- C.A. Igwegbe, P.C. Onyechi, O.D. Onukwuli, I.C. Nwokedi,
Adsorptive treatment of textile wastewater using activated
carbon produced from Mucuna pruriens seed shells, World J.
Eng. Technol., 4 (2016) 21–37.
- I. Ullah, R. Nadeem, M. Iqbal, Q. Manzoor, Biosorption of
chromium onto native and immobilized sugarcane bagasse
waste biomass, Ecol. Eng., 60 (2013) 99–107.
- Y. Chun, G. Sheng, C.T. Chiou, B. Xing, Compositions and
sorptive properties of crop residue-derived chars, Environ. Sci.
Technol., 38 (2004) 4649–4655.
- H. Li, X. Dong, E.B. da Silva, L.M. de Oliveira, Y. Chen,
L.Q. Ma, Mechanisms of metal sorption by biochars: biochar
characteristics and modifications, Chemosphere, 178 (2017)
466–478.
- A.A. Attia, S.A. Khedr, S.A. Elkholy, Adsorption of chromium
ion (VI) by acid activated carbon, Braz. J. Chem. Eng., 27(2010)
183–193.
- G. Socrates, Infrared and Raman Characteristic Group
Frequencies Tables and Charts, John Wiley and Sons, Ltd.,
New York, NY, 2004.
- J.T. Nwabanne, P.K. Igbokwe, Adsorption performance of
packed bed column for the removal of lead(II) using oil Palm
fibre, Int. J. Appl. Sci. Technol., 2 (2012) 106–115.
- V.C. Taty-Costodes, H. Fauduet, C. Porte, Y.S. Ho, Removal
of lead(II) ions from synthetic and real effluents using
immobilized Pinus sylvestris sawdust: adsorption on a fixed
column, J. Hazard. Mater., 123 (2005) 135–144.
- A.H. Alamin, L. Kaewsichan, Adsorption of Pb(II) Ions from
aqueous solution in fixed bed column by mixture of clay plus
bamboo biochar, Walailak J. Sci. Technol., 13 (2016) 949–963.
- P. Sivakumar, P.N. Palanisamy, Adsorption studies of basic
Red-29 by a non-conventional activated carbon prepared from
Euphorbia antiquorum L., Int. J. Chem. Technol. Res., 84 (2009)
502–510.
- A. Baek, K. Song, S. Kang. Y. Rhee, C. Lee, B. Lee, S. Hudson,
T. Hwang, Adsorption kinetics of boron by anion exchange
resin in packed column bed. J. Ind. Eng. Chem., 13 (2007)
452–456.
- S.V. Gokhale, K.K. Jyoti, S.S. Lele, Modeling of chromium(VI)
biosorption by immobilized Spirulina platensis in packed
column, J. Hazard. Mater., 170 (2009) 735–743.
- P.D. Rocha, A.S. Franca, L.S. Oliveira, Batch and column studies
of phenol adsorption by an activated carbon based on acid
treatment of corn cobs, Int. J. Eng. Technol., 7 (2015) 459–464.
- N.K.E.M. Yahayaa, I. Abustana, M.F.P.M. Latiffa, O.S. Bello,
M.A. Ahmad, Fixed-bed column study for Cu(II) removal from
aqueous solutions using rice husk based activated carbon,
Int. J. Eng. Technol., 11 (2011) 186–190.