References
- S. Ahmed, Fatema-Tuj-Zohra, M.S.H. Khan, M.A. Hashem,
Chromium from tannery waste in poultry feed: a potential
cradle to transport human food chain, Cogent. Environ. Sci.,
3 (2017) 1312767, doi:10.1080/23311843.2017.1312767.
- C.K. Ozkan, H. Ozgunay, H. Akat, Possible use of corn starch
as tanning agent in leather industry: controlled (gradual)
degradation by H2O2, Int. J. Biol. Macromol., 122 (2019)
610–618.
- M.A. Hashem, M. Hasan, M.A. Momen, S. Payel, M.S. Nur-A-Tomal, Water hyacinth biochar for trivalent chromium
adsorption from tannery wastewater, Environ. Sustainability
Indic., 5 (2020) 100022, doi:10.1016/j.indic.2020.100022.
- R.T. Achmad, E.I. Auerkari, Effects of chromium on human
body, Ann. Res. Rev. Biol., 17 (2017) 1–8.
- M. Nur-E-Alam, M.A.S. Mia, F. Ahmad, M.M. Rahman, An
overview of chromium removal techniques from tannery
effluent, Appl. Water Sci., 10 (2020) 1–22.
- Y. Priastomo, H.R. Setiawan, Y.S. Kurniawan, K. Ohto,
Simultaneous removal of lead(II), chromium(III), and copper(II)
heavy metal ions through an adsorption process using
C-phenylcalix
- pyrogallolarene material, J. Environ. Chem.
Eng., 8 (2020) 103971, doi: 10.1016/j.jece.2020.103971.
- M. Fazal-ur-Rehman, Methodological trends in preparation
of activated carbon from local sources and their impacts on
production: a review, Chem. Int., 4 (2018) 109–119.
- A. Zubair, H.N. Bhatti, M.A. Hanif, F. Shafqat, Kinetic and
equilibrium modeling for Cr(III) and Cr(VI) removal from
aqueous solutions by Citrus reticulata waste biomass, Water Air
Soil Pollut., 191 (2008) 305–318.
- H.N. Bhatti, A.W. Nasir, M.A. Hanif, Efficacy of Daucus carota L. waste biomass for the removal of chromium from aqueous
solutions, Desalination, 253 (2010) 78–87.
- A.R. Iftikhar, H.N. Bhatti, M.A. Hanif, R. Nadeem, Kinetic and
thermodynamic aspects of Cu(II) and Cr(III) removal from
aqueous solutions using rose waste biomass, J. Hazard. Mater.,
161 (2009) 941–947.
- H.N. Bhatti, M. Yasir, Removal and recovery of Al(III) and
Cr(VI) from aqueous solution by waste black tea, Environ. Eng.
Manage. J., 5 (2016) 809–816.
- F. Liu, S. Hua, C. Wang, M. Qiu, L. Jin, B. Hu, Adsorption and
reduction of Cr(VI) from aqueous solution using cost-effective
caffeic acid functionalized corn starch, Chemosphere, 279 (2021)
130539, doi:10.1016/j.chemosphere.2021.130539.
- R. Wijaya, G. Andersan, S.P. Santoso, W. Irawaty, Green
reduction of graphene oxide using kaffir lime peel extract
(Citrus hystrix) and its application as adsorbent for methylene
blue, Sci. Rep., 10 (2020) 1–9.
- J. Li, X. Wang, G. Zhao, C. Chen, Z. Chai, A. Alsaedi, T. Hayat,
X. Wang, Metal-organic framework-based materials: superior
adsorbents for the capture of toxic and radioactive metal ions,
Chem. Soc. Rev., 47 (2018) 2322–2356.
- X. Liu, H. Pang, X. Liu, Q. Li, N. Zhang, L. Mao, M. Qiu,
B. Hu, H. Yang, X. Wang, Orderly porous covalent organic
frameworks-based materials: superior adsorbents for pollutants
removal from aqueous solutions, Innovation, 2 (2021) 100076,
doi: 10.1016/j.xinn.2021.100076.
- S. Raghav, D. Kumar, Adsorption equilibrium, kinetics,
and thermodynamic studies of fluoride adsorbed by
tetrametallic oxide adsorbent, J. Chem. Eng. Data, 63 (2018)
1682–1697.
- S. Ghosh, D. Mitra, In: A.K. Sarma, V.P. Singh, R.K. Bhattacharjya,
S.A. Kartha, Eds., Urban Ecology, Water Quality and Climate
Change, Springer, Switzerland, 2018, pp. 267–274.
- S. Mitra, A. Sarkar, S. Sen, Removal of chromium from industrial
effluents using nanotechnology: a review, Nanotechnol.
Environ. Eng., 2 (2017) 1–14.
- 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.
- A. Abu-Nada, G. McKay, A. Abdala, Recent advances in
applications of hybrid graphene materials for metals removal
from wastewater, Nanomaterials, 10 (2020) 595, doi: 10.3390/nano10030595.
- N. Zaaba, K. Foo, U. Hashim, S. Tan, W.-W. Liu, C. Voon,
Synthesis of graphene oxide using modified hummers method:
solvent influence, Proc. Eng., 184 (2017) 469–477.
- H. Pearson, D. Mara, C. Bartone, Guidelines for the minimum
evaluation of the performance of full-scale waste stabilization
pond systems, Water Res., 21 (1987) 1067–1075.
- M.Z. Iqbal, A.A. Abdala, Thermally reduced graphene:
synthesis, characterization and dye removal applications,
RSC Adv., 3 (2013) 24455–24464.
- J. Wang, B. Chen, Adsorption and coadsorption of organic
pollutants and a heavy metal by graphene oxide and reduced
graphene materials, Chem. Eng. J., 281 (2015) 379–388.
- P. Tan, J. Sun, Y. Hu, Z. Fang, Q. Bi, Y. Chen, J. Cheng,
Adsorption of Cu2+, Cd2+ and Ni2+ from aqueous single metal
solutions on graphene oxide membranes, J. Hazard. Mater.,
297 (2015) 251–260.
- R.L. White, C.M. White, H. Turgut, A. Massoud, Z.R. Tian,
Comparative studies on copper adsorption by graphene oxide
and functionalized graphene oxide nanoparticles, J. Taiwan
Inst. Chem. Eng., 85 (2018) 18–28.
- D.M. Mahmudunnabi, M.Z. Alam, M. Nurnabi, Removal of
TURQUOISE GN from aqueous solution using graphene oxide,
Desal. Water Treat., 174 (2020) 389–399.
- C. Valencia, C.H. Valencia, F. Zuluaga, M.E. Valencia, J.H. Mina,
C.D. Grande-Tovar, Synthesis and application of scaffolds
of chitosan-graphene oxide by the freeze-drying method for
tissue regeneration, Molecules, 23 (2018) 2651, doi: 10.3390/
molecules23102651.
- G. Blázquez, F. Hernáinz, M. Calero, M.A. Martín-Lara,
G. Tenorio, The effect of pH on the biosorption of Cr(III) and
Cr(VI) with olive stone, Chem. Eng. J., 148 (2009) 473–479.
- A. Bedemo, B.S. Chandravanshi, F. Zewge, Removal of trivalent
chromium from aqueous solution using aluminum oxide
hydroxide, Springer Plus, 5 (2016) 1–11.
- V.C.G.D. Santos, A.d.P.A. Salvado, D.C. Dragunski, D.N.C. Peraro,
C.R.T. Tarley, J. Caetano, Highly improved chromium(III) uptake
capacity in modified sugarcane bagasse using different chemical
treatments, Quím. Nova, 35 (2012) 1606–1611.
- Y. Abshirini, R. Foroutan, H. Esmaeili, Cr(VI) removal from
aqueous solution using activated carbon prepared from
Ziziphus Spina–Christi leaf, Mater. Res. Exp., 6 (2019) 045607,
doi: 10.1088/2053-1591/aafb45.
- Y. Qiu, Q. Zhang, B. Gao, M. Li, Z. Fan, W. Sang, H. Hao,
X. Wei, Removal mechanisms of Cr(VI) and Cr(III) by biochar
supported nanosized zero-valent iron: synergy of adsorption,
reduction and transformation, Environ. Pollut., 265 (2020)
115018, doi: 10.1016/j.envpol.2020.115018.
- O. Sahu, N. Singh, In: Shahid-ul-Islam, B.S. Butola, Eds.,
The Impact and Prospects of Green Chemistry for Textile
Technology, Elsevier, Amsterdam, 2019, pp. 367–416.
- H. Patel, Fixed-bed column adsorption study: a comprehensive
review, Appl. Water Sci., 9 (2019) 1–17.
- T. Bohli, A. Ouederni, I. Villaescusa, Simultaneous adsorption
behavior of heavy metals onto microporous olive stones
activated carbon: analysis of metal interactions, Euro-Meditt.
J. Environ. Integr., 2 (2017) 1–15.
- H. Vu, T. Frydl, P. Dvorak, J. Selucka, P. Starkova, In: L. Zhang,
J.W. Drelich, N.R. Neelameggham, D.P. Guillen, N. Haque,
J. Zhu, Z. Sun, T. Wang, J.A. Howarter, F. Tesfaye, S. Ikhmayies,
E. Olivetti, M.W. Kennedy, Eds., Energy Technology, Springer,
Switzerland, 2017, pp. 229–238.
- E. Aranda-García, E. Cristiani-Urbina, Hexavalent chromium
removal and total chromium biosorption from aqueous
solution by Quercus crassipes acorn shell in a continuous
up-flow fixed-bed column: influencing parameters, kinetics,
and mechanism, PLoS One, 15 (2020) e0227953, doi: 10.1371/journal.pone.0227953.
- P.V. Lopez-Nuñez, E. Aranda-García, M.d.C. Cristiani-Urbina,
L. Morales-Barrera, E. Cristiani-Urbina, Removal of hexavalent
and total chromium from aqueous solutions by plum
(P. domestica L.) tree bark, Environ. Eng. Manage. J., 13 (2014)
1927–1938.
- G.P. Jeppu, T.P. Clement, A modified Langmuir–Freundlich
isotherm model for simulating pH-dependent adsorption
effects, J. Contam. Hydrol., 129 (2012) 46–53.
- M. Iqbal, A. Abdala, Thermally reduced graphene: synthesis,
characterization and dye removal applications, RSC Adv.,
3 (2013) 24455–24464.
- N.K. Mondal, S. Chakraborty, Adsorption of Cr(VI) from
aqueous solution on graphene oxide (GO) prepared from
graphite: equilibrium, kinetic and thermodynamic studies,
Appl. Water Sci., 10 (2020) 1–10.
- H. Li, Z. Chi, J. Li, Covalent bonding synthesis of magnetic
graphene oxide nanocomposites for Cr(III) removal, Desal.
Water Treat., 52 (2014) 1937–1946.
- L.P. Lingamdinne, I.-S. Kim, J.-H. Ha, Y.-Y. Chang, J.R. Koduru,
J.-K. Yang, Enhanced adsorption removal of Pb(II) and Cr(III)
by using nickel ferrite-reduced graphene oxide nanocomposite,
Metals, 7 (2017) 225, doi: 10.3390/met7060225.
- L.P. Lingamdinne, J.R. Koduru, Y.-L. Choi, Y.-Y. Chang,
J.-K. Yang, Studies on removal of Pb(II) and Cr(III) using
graphene oxide based inverse spinel nickel ferrite nanocomposite
as sorbent, Hydrometallurgy, 165 (2016) 64–72.
- S. Yang, L. Li, Z. Pei, C. Li, J. Lv, J. Xie, B. Wen, S. Zhang,
Adsorption kinetics, isotherms and thermodynamics of Cr(III)
on graphene oxide, Colloids Surf., A, 457 (2014) 100–106.
- X. Yang, Y. Wan, Y. Zheng, F. He, Z. Yu, J. Huang, H. Wang,
Y.S. Ok, Y. Jiang, B. Gao, Surface functional groups of carbonbased
adsorbents and their roles in the removal of heavy
metals from aqueous solutions: a critical review, Chem. Eng. J.,
366 (2019) 608–621.
- E.C. Lima, A.A. Gomes, H.N. Tran, Comparison of the nonlinear
and linear forms of the van’t Hoff equation for calculation of
adsorption thermodynamic parameters (ΔS° and ΔH°), J. Mol.
Liq., 311 (2020) 113315, doi:10.1016/j.molliq.2020.113315.
- ECR, Ministry of Environment and Forest (MoEF) Government
of People’s Republic of Bangladesh, Environmental
Conservation Rules, 1997, pp. 221–222.
- F. Teshale, R. Karthikeyan, O. Sahu, Synthesized bioadsorbent
from fish scale for chromium(III) removal, Micron, 130 (2020)
102817, doi: 10.1016/j.micron.2019.102817.
- C. Bai, L. Wang, Z. Zhu, Adsorption of Cr(III) and Pb(II) by
graphene oxide/alginate hydrogel membrane: characterization,
adsorption kinetics, isotherm and thermodynamics studies,
Int. J. Biol. Macromol., 147 (2020) 898–910.
- S.B. Lyubchik, I.I. Perepichka, O.L. Galushko, A.I. Lyubchik,
E.S. Lygina, I.M. Fonseca, Optimization of the conditions for the
Cr(III) adsorption on activated carbon, Adsorption, 11 (2005)
581–593.