References
- M.P. Aji, P.A. Wiguna, J. Karunawan, A.L. Wati, Removal
of heavy metal nickel-ions from wastewaters using carbon
nanodots from frying oil, Procedia Eng., 170 (2017) 36–40.
- N.M. Hilal, I.A. Ahmed, R.E. El-Sayed, Activated and nonactivated
date pits adsorbent for the removal of copper(II) and
cadmium(II) from wastewater, ISRN Phys. Chem., 2012 (2012)
985853, doi: 10.5402/2012/985853.
- A. Othmani, J. John, H. Rajendran, A. Mansouri, M. Sillanpää,
P.V. Chellam, Biochar and activated carbon derivatives
of lignocellulosic fibers towards adsorptive removal of
pollutants from aqueous systems: critical study and future
insight, Sep. Purif. Technol., 274 (2021) 119062, doi: 10.1016/j.seppur.2021.119062.
- Z.U. Zango, N.S. Sambudi, K. Jumbri, A. Ramli, N.H.H. Abu
Bakar, B. Saad, M.N.H. Rozaini, H.A. Isiyaka, A.M. Osman,
A. Sulieman, An overview and evaluation of highly porous
adsorbent materials for polycyclic aromatic hydrocarbons and
phenols removal from wastewater, Water, 12 (2020) 2921, doi:
10.3390/w1210292.
- A. Othmani, A. Kesraoui, H. Akrout, I. Elaissaoui, M. Seffen,
Coupling anodic oxidation, biosorption and alternating current
as alternative for wastewater purification, Chemosphere,
249 (2020) 126480, doi:10.1016/j.chemosphere.2020.126480.
- A.A. Mengistie, T. Siva Rao, A.V. Prasada Rao, M. Singanan,
Removal of lead(II) ions from aqueous solutions using activated
carbon from Militia ferruginea plant leaves, Bull. Chem. Soc.
Ethiop., 22 (2008) 349–360.
- H.Z. Mousavi, A. Hosseynifar, V. Jahed, S.A.M. Dehghani,
Removal of lead from aqueous, Braz. J. Chem. Eng., 27 (2010)
79–87.
- A.A. Alghamdi, A.-B. Al-Odayni, W.S. Saeed, A. Al-Kahtani,
F.A. Alharthi, T. Aouak, Efficient adsorption of lead(II) from
aqueous phase solutions using polypyrrole-based activated
carbon, Materials (Basel), 12 (2020), doi:10.3390/ma12122020.
- J.H. Al-Baidhani, S.T. Al-Salihy, Removal of heavy metals from
aqueous solution by using low cost rice husk in batch and
continuous fluidized experiments, Int. J. Chem. Eng. Appl.,
7 (2016) 6–10.
- K. Manzoor, M. Ahmad, S. Ahmad, S. Ikram, Removal of
Pb(II) and Cd(II) from wastewater using arginine cross-linked
chitosan-carboxymethyl cellulose beads as green adsorbent,
RSC Adv., 9 (2019) 7890–7902.
- 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.
- H. Ben Amor, A. Mabrouk, N. Talmoudi, Preparation of
activated carbon from date stones: optimization on removal of
indigo carmine from aqueous solution using a two-level full
factorial design, Int. J. Eng. Res. General Sci., 3 (2015) 6–17.
- A. Kaushal, S.K. Singh Adsorption phenomenon and its
application in removal of lead from waste water: a review,
Int. J. Hydrol., 1 (2017) 38–47.
- I. Bhatti, K. Qureshi, R.A. Kazi, A.K. Ansari, Preparation and
characterisation of chemically activated almond shells by
optimization of adsorption parameters for removal of Cr(VI)
from aqueous solutions, Int. J. Chem. Biomol. Eng., 1 (2007)
199–204.
- S. Yildiz, Kinetic and isotherm analysis of Cu(II) adsorption
onto almond shell (Prunus Dulcis), Ecol. Chem. Eng. S,
24 (2017) 87–106.
- P.K. Chayande, S.P. Singh, M.K.N. Yenkie, Characterization of
activated carbon prepared from almond shells for scavenging
phenolic pollutants, Chem. Sci. Trans., 2 (2013) 835–840.
- A. Kardam, K.R. Raj, J.K. Arora, M.M. Srivastava, S. Srivastava,
Artificial neural network modeling for sorption of cadmium
from aqueous system by shelled Moringa oleifera seed powder
as an agricultural waste, J. Water Resour. Prot., 2 (2010) 339–344.
- D. Sarala Thambavani, B. Kavitha, Prediction and simulation
of chromium(VI) ions removal efficiency by riverbed sand
adsorbent using Artificial Neural Networks, Int. J. Eng. Sci. Res.
Technol., 3 (2014) 906–913.
- Z. Yi, J. Yao, M. Zhu, H. Chen, F. Wang, X. Liu, Kinetics,
equilibrium, and thermodynamics investigation on the
adsorption of lead(II) by coal-based activated carbon,
SpringerPlus, 5 (2016) 1–12.
- S.C.G. Moraes, L.E.M.C. Zaidan, D.C. Napoleão, F.O. Carvalho,
M.C.B. Montenegro, V.L. Da Silva, Implementing artificial
neural networks modelling after the treatment of oil refinery
effluents using advanced oxidation processes, Braz. J. Pet. Gas,
10 (2016) 23–32.
- S.L. Pandharipande, A.R. Deshmukh, Artificial neural network
approach for modeling of adsorption of Ni(II) and Cr(VI) ions
simultaneously present in aqueous solution, Int. J. Adv. Eng.
Technol., 6 (2013) 114–127.
- H.M. Madhloom, A.H. Khalil, Z.T. Abd Ali, Artificial neural
network for modeling of Cu(II) bio-sorption from simulated
wastewater by fungal biomass, J. Eng. Dev., 19 (2015) 210–222.
- Y.A. Mustafa, G.M. Jaid, A.I. Alwared, M. Ebrahim, The use
of artificial neural network (ANN) for the prediction and
simulation of oil degradation in wastewater by AOP, Environ.
Sci. Pollut. Res., 21 (2014) 7530–7537.
- N.M. Mahmoodi, J. Abdi, D. Bastani, Direct dyes removal using
modified magnetic ferrite nanoparticle, J. Environ. Health Sci.
Eng., 12 (2014) 1–10.
- O. Abdelwahab, Kinetic and isotherm studies of copper(II)
removal from wastewater using various adsorbents, Egypt. J.
Aquat. Res., 33 (2007) 125–142.
- O.A. Habeeb, R. Kanthasamy, G.A.M. Ali, R.M. Yunus,
Isothermal modelling based experimental study of dissolved
hydrogen sulfide adsorption from waste water using eggshell
based activated carbon, Malaysian J. Anal. Sci., 21 (2017)
334–345.
- K. Li, H. Chen, H. Yu, H. Zhu, Q. Mao, X. Ma, Z. Zhao, T. Xiao,
Study on the comprehensive utilization of bitter almond shell,
BioResources, 9 (2014) 4993–5006.
- D.T. Mekonnen, E. Alemayehu, B. Lennartz, Removal of
phosphate ions from aqueous solutions by adsorption onto
leftover coal, Water, 12 (2020) 1381, doi: 10.3390/w12051381.
- H. Qin, Y. Zhou, J. Huang, C. Zhang, B. Wang, S. Jin, Q. Zhou,
Catalytic graphitization strategy for the synthesis of graphitic
carbon nanocages and electrochemical performance, Int. J.
Electrochem. Sci., 12 (2017) 10599–10604.
- A. Raja, K. Selvakumar, S. Asath Bahadur, S. Asath Bahadur,
Photocatalytic degradation of organic pollutant using reduced
graphene oxide, Int. J. Recent Technol. Eng., 8 (2019) 870–872.
- P. Scherrer, Göttinger Nachrichten Gesell, Determination
of the size and internal structure of colloidal particles by
means of X-rays, Mathematical-Physics Class, 2 (1918)
98. Available at: http://www.digizeitschriften.de/dms/
resolveppn/?PID=PPN252457811
- N. Yusof, D. Rana, A.F. Ismail, T. Matsuura, Microstructure of
polyacrylonitrile-based activated carbon fibers preparedfrom
solvent-free coagulation process, J. Appl. Res. Technol.,
14 (2016) 54–61.
- N.A. Medellin-Castillo, E. Padilla-Ortega, M.C. Regules-Martínez, R. Leyva-Ramos, R. Ocampo-Pérez,
C. Carranza-Alvarez, Single and competitive adsorption of Cd(II) and
Pb(II) ions from aqueous solutions onto industrial chili seeds
(Capsicum annuum) waste, Sustainable Environ. Res., 27 (2017)
61–69.
- H.H. Abdel Ghafar, G.A.M. Ali, O.A. Fouad, S.A. Makhlouf,
Enhancement of adsorption efficiency of methylene blue on
Co3O4/SiO2 nanocomposite, Desal. Water Treat., 53 (2013)
2980–2989.
- G.A.M. Ali, O. Habeeb, H. Algarni, K.F. Chong, CaO
impregnated highly porous honeycomb activated carbon from
agriculture waste symmetical supercapacitor study, J. Mater.
Sci., 54 (2019) 683–692.