References
- L.C. Arteaga, M.P. Zavaleta, W.M. Eustaquio, J.M. Bobadill,
Removal of aniline blue dye using live microalgae
Chlorella vulgaris, Energy Environ. Sci., 2 (2018) 6–12.
- M. Auta, B. Hameed, Preparation of waste tea activated carbon
using potassium acetate as an activating agent for adsorption
of Acid Blue 25 dye, Chem. Eng. J., 171 (2011) 502–509.
- V.K. Gupta, D. Pathania, S. Agarwal, P. Singh, Adsorptional
photocatalytic degradation of methylene blue onto pectin –
CuS nanocomposite under solar light, J. Hazard. Mater.,
243 (2012) 179–186.
- Ö. Tunc, H. Tanacı, Z. Aksu, Potential use of cotton plant wastes
for the removal of Remazol Black B reactive dye, J. Hazard.
Mater., 163 (2009) 187–198.
- Y. Yang, G. Wang, B. Wang, Z. Li, X. Jia, Q. Zhou, Biosorption
of Acid Black 172 and Congo Red from aqueous solution
by nonviable Penicillium YW 01: kinetic study, equilibrium
isotherm and artificial neural network modeling, Bioresour.
Technol., 102 (2011) 828–834.
- S. Altenor, B. Carene, E. Emmanuel, J. Lambert, Adsorption
studies of methylene blue and phenol onto vetiver roots
activated carbon prepared by chemical activation, J. Hazard.
Mater., 165 (2009) 1029–1039.
- Z. Aksu, Application of biosorption for the removal of organic
pollutants: a review, Process Biochem., 40 (2005) 997–1026.
- Z. Aksu, S. Tezer, Biosorption of reactive dyes on the green alga
Chlorella vulgaris, Process Biochem., 40 (2005) 1347–1361.
- R. Patel. S. Suresh, Kinetic and equilibrium studies on the
biosorption of reactive black 5 dye by Aspergillus foetidus,
Bioresour. Technol., 99 (2008) 51–58.
- A. Srinivasan, T. Viraraghavan, Decolorization of dye
wastewaters by biosorbents: a review, J. Environ. Manage.,
91 (2010) 1915–1929.
- M.E. Russo, F. Di Natale, V. Prigione, V. Tigini, A. Marzocchella,
G.C. Varese, Adsorption of acid dyes on fungal biomass:
equilibrium and kinetics characterization, Chem. Eng. J.,
162 (2010) 537–545.
- A. Çelekli, F. Geyik, Artificial neural networks (ANN) approach
for modeling of removal of Lanaset Red G on Chara contraria,
Bioresour. Technol., 102 (2011) 5634–5638.
- G.L. Dotto, L.A.d.A. Pinto, Adsorption of food dyes onto
chitosan: optimization process and kinetic, Carbohydr. Polym.,
84 (2011) 231–238.
- H.Y. El-Kassas, L.A. Mohamed, Bioremediation of the textile
waste effluent by Chlorella vulgaris, Egypt. J. Aquat. Res.,
40 (2014) 301–308.
- A. Seker, T. Shahwan, A.E. Eroğlu, S. Yilmaz, Z. Demirel,
M.C. Dalay, Equilibrium thermodynamic and kinetic studies
for the biosorption of aqueous lead (II), cadmium (II) and
nickel (II) ions on Spirulina platensis, J. Hazard. Mater.,
154 (2008) 973–980.
- A. Çelekli, H. Bozkurt, Bio-sorption of cadmium and nickel
ions using Spirulina platensis: kinetic and equilibrium studies,
Desalination, 275 (2011) 141–147.
- L. Fang, C. Zhou, P. Cai, W. Chen, X. Rong, K. Dai, W. Liang,
J. Gu, Q. Huang, Binding characteristics of copper and
cadmium by cyanobacterium Spirulina platensis, J. Hazard.
Mater., 190 (2011) 810–815.
- W. Cheung, Y. Szeto, G. McKay, Enhancing the adsorption
capacities of acid dyes by chitosan nano particles, Bioresour.
Technol., 100 (2009) 1143–1148.
- B.S. Inbaraj, B. Chen, Dye adsorption characteristics of magnetite
nanoparticles coated with a biopolymer poly (γ-glutamic acid),
Bioresour. Technol., 102 (2011) 8868–8876.
- D. Mandal, M.E. Bolander, D. Mukhopadhyay, G. Sarkar,
P. Mukherjee, The use of microorganisms for the formation
of metal nanoparticles and their application, Appl. Microbiol.
Biotechnol., 69 (2006) 485–492.
- A. Jebali, F. Ramezani, B. Kazemi, Biosynthesis of silver
nanoparticles by Geotricum sp, J. Clust. Sci., 22 (2011)
225–232.
- S. Saif, A. Tahir, Y. Chen, Green synthesis of iron nanoparticles
and their environmental applications and implications,
Nanomaterials, 6 (2016) 209.
- S. Siji, J. Njana, P. Amrita, D. Vishnudasan, Biogenic synthesis of
iron oxide nanoparticles from marine algae, Int. J. Multidiscip.
Res., 1 (2018) 1–7.
- M.F. Lengke, M.E. Fleet, G. Southam, Morphology of gold
nanoparticles synthesized by filamentous cyanobacteria
from gold (I)−thiosulfate and gold (III)− chloride complexes,
Langmuir, 22 (2006) 2780–2787.
- G. Singaravelu, J. Arockiamary, V.G. Kumar, K. Govindaraju,
A novel extracellular synthesis of monodisperse gold
nanoparticles using marine alga, Sargassum wightii Greville,
Colloids Surf. B, 57 (2007) 97–101.
- T. Ogi, N. Saitoh, T. Nomura, Y. Konishi, Room-temperature
synthesis of gold nanoparticles and nanoplates using Shewanella
algae cell extract, J. Nanopart. Res., 12 (2010) 2531–2539.
- A. Rahman, A. Ismail, D. Jumbianti, S. Magdalena, H. Sudrajat,
Synthesis of copper oxide nano particles by using Phormidium
cyanobacterium, Indonesian J. Chem., 9 (2009) 355–360.
- S. Honary, H. Barabadi, E. Gharaei-Fathabad, F. Naghibi, Green
synthesis of copper oxide nanoparticles using Penicillium
aurantiogriseum, Penicillium citrinum and Penicillium waksmanii,
Dig. J. Nanomater. Biostruct., 7 (2012) 999–1005.
- W.J. Crookes-Goodson, J.M. Slocik, R.R. Naik, Bio-directed
synthesis and assembly of nanomaterials, Chem. Soc. Rev.,
37 (2008) 2403–2412.
- A.K. Gade, P. Bonde, A.P. Ingle, P.D. Marcato, N. Durán,
M.K. Rai, Exploitation of Aspergillus niger for synthesis of
silver nanoparticles, J. Biobased Mater. Bioenergy, 2 (2008)
243–247.
- C.K. Lee, S.S. Liu, L.C. Juang, C.C. Wang, M.D. Lyu, S.H. Hung,
Application of titanate nanotubes for dyes adsorptive removal
from aqueous solution, J. Hazard. Mater., 148 (2007) 756–760.
- R. Salehi, M. Arami, N.M. Mahmoodi, H. Bahrami,
S. Khorramfar, Novel biocompatible composite (chitosan–zinc
oxide nanoparticle): preparation, characterization and dye
adsorption properties, Colloids Surf., B, 80 (2010) 86–93.
- X. Li, W. Xiao, G. He, W. Zheng, N. Yu, M. Tan, Pore size and
surface area control of MgO nanostructures using a surfactanttemplated
hydrothermal process: high adsorption capability
to azo dyes, Colloids Surf., A, 408 (2012) 79–86.
- C. Păcurariu, O. Paşka, R. Ianoş, S.G. Muntean, Effective
removal of methylene blue from aqueous solution using a new
magnetic iron oxide nanosorbent prepared by combustion
synthesis, Clean Technol. Environ. Policy, 18 (2016) 705–715.
- T. Neuberger, B. Schöpf, H. Hofmann, M. Hofmann, B. Von
Rechenberg, Superparamagnetic nanoparticles for biomedical
applications: possibilities and limitations of a new drug
delivery system, J. Magn. Magn. Mater., 293 (2005) 483–496.
- M. Mahdavi, F. Namvar, M.B. Ahmad, R. Mohamad, Green
biosynthesis and characterization of magnetic iron oxide (Fe3O4)
nanoparticles using seaweed (Sargassum muticum) aqueous
extract, Molecules, 18 (2013) 5954–5964.
- H.Y. El-Kassas, M.A. Aly-Eldeen, S.M. Gharib, Green synthesis
of iron oxide (Fe3O4) nanoparticles using two selected
brown seaweeds: characterization and application for lead
bioremediation, Acta Oceanol. Sinica, 35 (2016) 89–98.
- Y.P. Yew, K. Shameli, M. Miyake, N. Kuwano, N.B.B.A. Khairudin,
S.E.B. Mohamad, K.X. Lee, Green synthesis of magnetite
(Fe3O4) nanoparticles using seaweed (Kappaphycus alvarezii)
extract, Nanoscale Res. Lett., 11 (2016) 276.
- S.L. Lim, W.L. Chu, S.M. Phang, Use of Chlorella vulgaris for
bioremediation of textile wastewater, Bioresour. Technol.,
101 (2010) 7314–7322.
- E. Acuner, F. Dilek, Treatment of tectilon yellow 2G by Chlorella
vulgaris, Process Biochem., 39 (2004) 623–631.
- M. Hernández-Zamora, E. Cristiani-Urbina, F. Martínez-Jerónimo, H.V. Perales-Vela, T. Ponce-Noyola, M.C. Montes-Horcasitas, R.O. Cañizares-Villanueva, Bioremoval of the azo
dye Congo Red by the microalga Chlorella vulgaris, Environ.
Sci. Pollut. Res., 22 (2015) 10811–10823.
- S.Y. Mak, D.H. Chen, Fast adsorption of methylene blue on
polyacrylic acid-bound iron oxide magnetic nanoparticles,
Dyes Pigm., 61 (2004) 93–98.
- Y.T. Lin, C.H. Weng, F.Y. Chen, Effective removal of AB24
dye by nano/micro-size zero-valent iron, Sep. Purif. Technol.,
64 (2008) 26–30.
- Z. Zhang, J. Kong, Novel magnetic Fe3O4@C nanoparticles as
adsorbents for removal of organic dyes from aqueous solution,
J. Hazard. Mater., 193 (2011) 325–329.
- T. Shahwan, S. Abu Sirriah, M. Nairat, E. Boyacı, A.E. Eroglu,
T.B. Scott, K.R. Hallam, Green synthesis of iron nanoparticles
and their application as a Fenton-like catalyst for the
degradation of aqueous cationic and anionic dyes, Chem. Eng.
J., 172 (2011) 258–266.
- J.S.T. Hernandez, A.A. Muriel, J. Tabares, G.P. Alcázar,
A. Bolaños, Preparation of Fe3O4 nanoparticles and removal
of methylene blue through adsorption, J. Phys. Conf. Ser.,
614 (2015) 012007.
- S.H. Kim, P.P. Choi, Enhanced Congo red dye removal from
aqueous solutions using iron nanoparticles: adsorption,
kinetics, and equilibrium studies, Dalton Trans., 46 (2017)
15470–15479.
- I. Ali, C. Peng, Z.M. Khan, M. Sultan, I. Naz, Green synthesis
of phytogenic magnetic nanoparticles and their applications in
the adsorptive removal of crystal violet from aqueous solution,
Arab. J. Sci. Eng., 43 (2018) 6245–6259.
- R.Y. Stanier, R. Kunisawa, M. Mandel, G. Cohen-Bazire,
Purification and properties of unicellular blue-green algae
(order Chroococcales), Bacteriol. Rev., 35 (1971) 171.
- F. Thema, P. Beukes, A. Gurib-Fakim, M. Maaza, Green
synthesis of Monteponite CdO nanoparticles by Agathosma
betulina natural extract, J. Alloys Compd., 646 (2015)
1043–1048.
- M.M.S.I. Khaleelullah, M. Murugan, K.V. Radha, D. Thiyagarajan,
Y. Shimura, Y. Hayakawa, Synthesis of superparamagnetic
iron oxide nanoparticles assisted by brown
seaweed Turbinaria decurrens for removal of reactive navy blue
dye, Mater. Res. Express, 4 (2017) 105038.
- T.S. Hui, M.A.A. Zaini, Isotherm studies of methylene blue
adsorption onto potassium salts-modified textile sludge,
J. Teknol., 74 (2015) 57–63.
- N. Efecan, T. Shahwan, A.E. Eroğlu, I. Lieberwirth,
Characterization of the uptake of aqueous Ni2+ ions on
nanoparticles of zero-valent iron (nZVI), Desalination,
249 (2009) 1048–1054.
- Y.P. Sun, X.Q. Li, W.X. Zhang, H.P. Wang, A method for
the preparation of stable dispersion of zero-valent iron
nanoparticles, Colloids Surf., A, 308 (2007) 60–66.
- Y.P. Yew, K. Shameli, M. Miyake, N.B.B.A. Khairudin,
S.E.B. Mohamad, T. Naiki, K.X. Lee, Green biosynthesis
of superparamagnetic magnetite Fe3O4 nanoparticles and
biomedical applications in targeted anticancer drug delivery
system: a review, Arab. J. Chem., 13 (2020) 2287–2308.
- D.K. Lee, Y.S. Kang, Preparation and characterization of
magnetic nanoparticles by γ-irradiation, Mater. Sci. Eng. C,
24 (2004) 107–111.
- S. Siji, J. Njana, P.J. Amrita, A. Raj, D. Vishnudasan, M. Panicker,
Green Synthesized Iron Nanoparticles and Its Uptake in
Pennisetum glaucum — A Nanonutriomics Approach, in 2017
International Conference on Technological Advancements
in Power and Energy (TAP Energy), (IEEE, 2017), pp. 1–8.
- A.S. Teja, P.Y. Koh, Synthesis, properties, and applications
of magnetic iron oxide nanoparticles, Prog. Cryst. Growth
Charact. Mater., 55 (2009) 22–45.
- Y. Lu, Y. Yin, B.T. Mayers, Y. Xia, Modifying the surface
properties of superparamagnetic iron oxide nanoparticles
through a sol− gel approach, Nano Lett., 2 (2002) 183–186.
- W. Wu, Q. He, C. Jiang, Magnetic iron oxide nanoparticles:
synthesis and surface functionalization strategies, Nanoscale
Res. Lett., 3 (2008) 397.
- S. Sun, H. Zeng, Size-controlled synthesis of magnetite
nanoparticles, J. Am. Chem. Soc., 124 (2002) 8204–8205.
- N. Wang, L. Zhou, J. Guo, Q. Ye, J.M. Lin, J. Yuan, Adsorption of
environmental pollutants using magnetic hybrid nanoparticles
modified with β-cyclodextrin, Appl. Surf. Sci., 305 (2014) 267–273.
- E. Alp, N. Aydogan, A comparative study: synthesis of
superparamagnetic iron oxide nanoparticles in air and N2
atmosphere, Colloids Surf., A, 510 (2016) 205–212.
- S.L. Pal, U. Jana, P.K. Manna, G.P. Mohanta, R. Manavalan,
Nanoparticle: an overview of preparation and characterization,
J. Appl. Pharm. Sci., 1 (2011) 228–234.
- B. Kumar, K. Smita, L. Cumbal, A. Debut, S. Galeas,
V.H. Guerrero, Phytosynthesis and photocatalytic activity of
magnetite (Fe3O4) nanoparticles using the Andean blackberry
leaf, Mater. Chem. Phys., 179 (2016) 310–315.
- V. Subramaniyam, S.R. Subashchandrabose, P. Thavamani,
M. Megharaj, Z. Chen, R. Naidu Chlorococcum sp. MM11—a
novel phyco-nanofactory for the synthesis of iron nanoparticles,
J. Appl. Phycol., 27 (2015) 1861–1869.
- M.N. Nadagouda, A.B. Castle, R.C. Murdock, S.M. Hussain,
R.S. Varma, In vitro biocompatibility of nanoscale zerovalent
iron particles (NZVI) synthesized using tea polyphenols,
Green Chem., 12 (2010) 114–122.
- M. Rahimi, Removal of methylene blue from wastewater by
adsorption onto ZnCl2 activated corn husk carbon equilibrium
studies, J. Chem., 2013 (2013) 1–6.
- E. Alzahrani, Gum Arabic-coated magnetic nanoparticles for
methylene blue removal, Int. J. Innov. Res. Sci. Eng. Technol.,
3 (2014) 15118–15129.
- S. Senthilkumaar, P. Varadarajan, K. Porkodi, C. Subbhuraam,
Adsorption of methylene blue onto jute fiber carbon: kinetics
and equilibrium studies, J. Colloid Interface Sci., 284 (2005)
78–82.
- M. Mahmoud, Decolorization of certain reactive dye from
aqueous solution using Baker’s Yeast (Saccharomyces cerevisiae)
strain, HBRC J., 12 (2016) 88–98.
- J. Ruana, I. Urbe, F. Borrull, Determination of phenols at the ng/l
level in drinking and river waters by liquid chromatography
with UV and electrochemical detection, J. Chromatogr. A, 655
(1993) 217–226.
- B.A. Fil, C. Ozmetin, M. Korkmaz, Cationic dye (methylene
blue) removal from aqueous solution by montmorillonite,
Bull. Korean Chem. Soc., 33 (2012) 3184–3190.
- T. Santhi, S. Manonmani, Adsorption of methylene blue from
aqueous solution onto a waste aquacultural shell powders
(Prawn Waste), Sustainable Environ. Res., 22 (2012) 45.
- Y. Özdemir, M. Doğan, M. Alkan, Adsorption of cationic dyes
from aqueous solutions by sepiolite, Microporous Mesoporous
Mater., 96 (2006) 419–427.
- M. Boumediene, H. Benaïssa, B. George, S. Molina, A. Merlin,
Effects of pH and ionic strength on methylene blue removal
from synthetic aqueous solutions by sorption onto orange peel
and desorption study, J. Mater. Environ. Sci., 9 (2018) 1700–1711.
- A. Bhalkikar, Z.C. Gernhart, C.L. Cheung, Recyclable magnetite
nanoparticle catalyst for one-pot conversion of cellobiose to
5-hydroxymethylfurfural in water, J. Nanomater., 2015 (2015)
1–8.