References
- M.J. Ascott, D.C. Gooddy, D.J. Lapworth, M.E. Stuart, Estimating
the leakage contribution of phosphate dosed drinking water
to environmental phosphorus pollution at the national-scale,
Sci. Total Environ., 572 (2016) 1534–1542.
- F. Karkeh-Abadi, S. Saber-Samandari, S. Saber-Samandari,
The impact of functionalized CNT in the network of sodium
alginate-based nanocomposite beads on the removal of Co(II)
ions from aqueous solutions, J. Hazard. Mater., 312 (2016)
224–233.
- S.W. Zhang, Z.Q. Guo, J.Z. Xu, H.H. Niu, Z.S. Chen, J.Z. Xu, Effect
of environmental conditions on the sorption of radiocobalt from
aqueous solution to treated eggshell as biosorbent, J. Radioanal.
Nucl. Chem., 28 (2011) 121–130.
- Chemical Properties of Cobalt – Health Effects of Cobalt –
Environmental Effects of Cobalt, LENNTECH. Available at:
https://www.lenntech.com/periodic/elements/co.htm
- X.W. Tang, Z.Z. Li, Y.M. Chen, Adsorption behavior of Zn(II) on
calcinated Chinese Loess, J. Hazard. Mater., 161 (2009) 824–834.
- H. Aylin Devrimci, A. Mete Yuksel, F. Dilek Sanin, Algal
alginate: a potential coagulant for drinking water treatment,
Desalination, 299 (2012) 16–21.
- M.T. Yagub, T.K. Sen, S. Afroze, H.M. Ang, Dye and its removal
from aqueous solution by adsorption: a review, Adv. Colloid
Interface Sci., 209 (2014) 172–184.
- Y.S. Ho, G.A. McKay, A comparison of chemisorption kinetic
models applied to pollutant removal on various sorbents,
Process Saf. Environ. Prot., 76 (2009) 332–340.
- M.R. Awual, M.M. Hasan, A. Islam, A.M. Asiri, M.M. Rahman,
Optimization of an innovative composited material for effective
monitoring and removal of cobalt(II) from wastewater, J. Mol.
Liq., 298 (2020) 112035, doi: 10.1016/j.molliq.2019.112035.
- M.R. Awual, A. Islam, M.M. Hasan, M.M. Rahman,
A.M. Asiri, M.A. Khaleque, M.C. Sheikh, Introducing an
alternate conjugated material for enhanced lead(II) capturing
from wastewater, J. Cleaner Prod., 224 (2019a) 920–929.
- J. Li, S. Zhang, C. Chen, G. Zhao, X. Yang, J. Li, X. Wang,
Removal of Cu(II) and fulvic acid by graphene oxide
nanosheets decorated with Fe3O4 nanoparticles, ACS Appl.
Mater. Interfaces., 4 (2012) 4991–5000.
- J. Abdi, M. Vossoughi, N. Mohammad Mahmoodi, I. Alemzadeh,
Synthesis of metalorganic framework hybrid nanocomposites
based on GO and CNT with high adsorption capacity for dye
removal, Chem. Eng. J., 326 (2017) 1145–1158.
- A. Nasrullah, A.H. Bhat, A. Naeem, M.H. Isa, M. Danish, High
surface area mesoporous activated carbon-alginate beads for
efficient removal of methylene blue, Int. J. Biol. Macromol.,
107 (2018) 1792–1799.
- F. Aziz, M. El Achaby, A. Lissaneddine, K. Aziz, N. Ouazzani,
R. Mamouni, L. Mandi, Composites with alginate beads:
a novel design of nano-adsorbents impregnation for large-scale
continuous flow wastewater treatment pilots, Saudi J. Biol. Sci.,
37 (2020) 2499–2508.
- K. Norajit, K.M. Kim, G.H. Ryu, Comparative studies on the
characterization and antioxidant properties of biodegradable
alginate films containing ginseng extract, J. Food Eng., 98 (2010)
377–384.
- L. Zhu, L. Zhang, Y. Tang, D. Ma, J. Yang, Synthesis of kaolin/sodium alginate-grafted poly(acrylic acid-co-2-acrylamido-2-methyl-1-propane sulfonic acid) hydrogel composite and its
sorption of lead, cadmium, and zinc ions, J. Elastomers Plast.,
47 (2015) 488–501.
- B. Wang, Y. Wan, Y. Zheng, X. Lee, T. Liu, Z. Yu, J. Huang,
Y.S. Ok, J. Chen, B. Gao, Alginate-based composites for
environmental applications: a critical review, Crit. Rev. Env. Sci.
Technol., 49 (2019) 318–356.
- M.A. Kamal, S. Bibi, S.W. Bokhari, A.H. Siddique, T. Yasin,
Synthesis and adsorptive characteristics of novel chitosan/graphene oxide nanocomposite for dye uptake, React. Funct.
Polym., 110 (2017) 21–29.
- S. Thakur, S. Pandey, O.A. Arotiba, Development of a sodium
alginate-based organic/inorganic superabsorbent composite
hydrogel for adsorption of methylene blue, Carbohydr. Polym.,
153 (2016) 34–46.
- M. Kawaguchi, T. Fukushima, T. Hayakawa, N. Nakashima,
Y. Inoue, S. Takeda, K. Okamura, K. Taniguchi, Preparation
of carbon nanotube-alginate nanocomposite gel for tissue
engineering, Dent. Mater. J.,
25 (2006) 719–725.
- M.S. Islam, M. Ashaduzzaman, S.M. Masum, J.H. Yeum,
Mechanical and electrical properties: electrospun alginate/carbon nanotube composite nanofiber, Dhaka Univ. J. Sci.,
60 (2012) 125–128.
- Y. Zhuang, F. Yu, H. Chen, J. Zheng, J. Ma, J. Chen, Alginate/graphene double-network nanocomposite hydrogel beads
with low swelling, enhanced mechanical properties, and
enhanced adsorption capacity, J. Mater. Chem. A, 4 (2016)
10885–10892.
- A.M. Alsharabasy, S.A. Moghannem, W.N. El-Mazny, Physical
preparation of alginate/chitosan polyelectrolyte complexes
for biomedical applications, J. Biomater. Appl., 30 (2015)
1071–1079.
- A. Bibi, Sadiq-ur Rehman, R. Faiz, T. Akhtar, M. Nawaz,
S. Bibi, Effect of surfactants on swelling capacity and kinetics
of alginate-chitosan/CNTs hydrogel, Mater. Res. Exp., 6 (2019)
085065.
- H. Lee, Y.C. Bae, Effect of surfactants on the swelling behaviors
of thermosensitive hydrogels: applicability of the generalized
Langmuir isotherm, RSC Adv., 6 (2016) 103811–103821.
- M.R. Awual, Efficient phosphate removal from water for
controlling eutrophication using novel composite adsorbent,
J. Cleaner Prod., 228 (2019b) 1311–1319.
- L. Pavia, G.M. Lampman, G.S. Kriz, Introduction to
Spectroscopy: A Guide for Students of Organic Chemistry,
W.B. Saunders Co., Philadelphia, 1979.
- Y. Ou, C.H. Zhang, S.D. Li, L. Yang, J.J. Dong, X.L. Mo, Thermal
degradation kinetics of chitosan-cobalt complex as studied
by thermogravimetric analysis, Carbohydr. Polym., 82 (2010)
1284–1289.
- S.C.M. Fernandes, C.S.R. Freire, A.J.D. Silvestre,
N.C. Pascoal, A. Gandini, L.A. Berglund, L. Salmen, Transparent
chitosan films reinforced with a high content of nano-fibrillated
cellulose, Carbohydr. Polym., 8 (2010) 394–401.
- D. Kulig, A. Zimoch-Korzycka, A. Jarmoluk, K. Marycz, Study
on alginate–chitosan complex formed with different polymers
ratio, Polymers, 8 (2016) 167, doi: 10.3390/polym8050167.
- S.G. Muntean, M.A. Nistor, E. Muntean, A. Todea, R. Ianoş,
C. Păcurariu, Removal of colored organic pollutants from
wastewaters by magnetite/carbon nanocomposites:
single and binary systems, J. Chem., 2018 (2018) 1–16,
doi: 10.1155/2018/6249821.
- R. Fiaz, M. Hafeez, R. Mahmood, Ficcus palmata leaves as a lowcost
biosorbent for methylene blue: thermodynamic and kinetic
studies, Water Environ. Res., 91 (2019) 689–699.
- A. Hassan, A. Abdel-Mohsen, M.M. Fouda, Comparative study
of calcium alginate, activated carbon, and their composite beads
on methylene blue adsorption, Carbohydr. Polym., 102 (2014)
192–198.
- M. Hamzaoui, B. Bestani, N. Benderdouche, The use of linear
and nonlinear methods for adsorption isotherm optimization
of basic green 4-dye onto sawdust-based activated carbon,
J. Mater. Environ. Sci., 9 (2018) 1110–1118.
- X. Yang, T. Zhou, B. Ren, A. Hursthouse, Y. Zhang, Removal of
Mn(II) by sodium alginate/graphene oxide composite doublenetwork
hydrogel beads from aqueous solutions, Sci. Rep.,
8 (2018) 1–16.
- C. Jiao, J. Xiong, J. Tao, S. Xu, D. Zhang, H. Lin, Y. Chen, Sodium
alginate/graphene oxide aerogel with enhanced strengthtoughness
and its heavy metal adsorption study, Int. J. Biol.
Macromol., 83 (2016) 133–141.
- W. Jung, B.H. Jeon, D.W. Cho, H.S. Roh, Y. Cho, S.J. Kim,
D.S. Lee, Sorptive removal of heavy metals with nano-sized
carbon immobilized alginate beads, J. Ind. Eng. Chem.,
26 (2015) 364–369.
- T. Gotoh, K. Matsushima, K.I. Kikuchi, Preparation of alginatechitosan
hybrid gel beads and adsorption of divalent metal
ions, Chemosphere, 55 (2004) 135–140.
- M. Khotimchenko, V. Kovalev, E. Khozhaenko, R. Khotimchenko,
Removal of yttrium(III) ions from water solutions by alginate
compounds, Int. J. Sci. Environ. Technol., 12 (2015) 3107–3116.
- H. Allaboun, M.M. Fares, F.A. Abu Al-Rub, Removal of
uranium and associated contaminants from aqueous solutions
using functional carbon nanotubes-sodium alginate conjugates.
Minerals. 6 (2016) 9,
doi: 10.3390/min6010009.