[1] A.S. Abdulhameed, A.H. Jawad, A.-T. Mohammad, Synthesis of chitosan-ethylene glycol diglycidyl ether/TiO
2 nanoparticles for adsorption of reactive orange 16 dye using a response surface methodology approach,
Bioresource Technology 2019,
293, 122071. [
Crossref], [
Google Scholar], [
Publisher]
[2] M.R. Yazdanbakhsh, H. Yousefi, M. Mamaghani, E.O. Moradi, M. Rassa, H. Pouramir, M. Bagheri, Synthesis, spectral characterization and antimicrobial activity of some new azo dyes derived from 4,6-dihydroxypyrimidine,
Journal of Molecular Liquids,
2012,
169, 21-26. [
Crossref], [
Google Scholar], [
Publisher]
[3] F.S. Hashim, A.F. Alkaim, S.J. Salim, A.H.O. Alkhayatt, Effect of (Ag, Pd) doping on structural, and optical properties of ZnO nanoparticales: As a model of photocatalytic activity for water pollution treatment,
Chemical Physics Letters,
2019,
737. [
Crossref], [
Google Scholar], [
Publisher]
[4] Q. Liu, Pollution and treatment of dye waste-water,
IOP Conference Series: Earth and Environmental Science, IOP Publishing,
2020, 52001. [
Google Scholar]
[5] X.Z. Tianyu Yin, Shuai Shao, Tao Xiang, Shaobing Zhou, Covalently crosslinked sodium alginate/poly(sodium p-styrenesulfonate) cryogels for selective removal of methylene blue,
Carbohydrate Polymers,
2023,
301, 120356. [
Crossref], [
Google Scholar], [
Publisher]
[6] M.J. Raoudha Soury, Salman Latif, Khalaf M. Alenezi, Mabrouka El Oudi, Fahad Abdulaziz, Safa Teka, Hani El Moll, Ashanul Haque, Synthesis and characterization of a new meso-tetrakis (2,4,6-trimethylphenyl) porphyrinto) zinc(II) supported sodium alginate gel beads for improved adsorption of methylene blue dye,
International Journal of Biological Macromolecules,
2022,
202, 161-176. [
Crossref], [
Google Scholar], [
Publisher]
[7] A. Taifi, O.K.A. Alkadir, A.M. Aljeboree, A.L. Al Bayaa, A.F. Alkaim, S.A. Abed, Environmental removal of reactive blue 49 dye from aqueous solution by (Lemon peels as activated carbon): A model of low cost agricultural waste,
IOP Conference Series: Earth and Environmental Science,
2022, 012010. [
Google Scholar], [
Publisher]
[8] I. Pinar, O. Hava, O. Ozgur, Selective adsorption of cationic dyes from colored noxious effluent using a novel
N-tert-butylmaleamic acid based hydrogels,
Reactive and Functional Polymers 2019,
124, 189–198. [
Crossref], [
Google Scholar], [
Publisher]
[9] S. Shweta, S. Gaurav, K. Amit, S. Tahani, M. Naushad, A. Zeid, J. Florian, Adsorption of cationic dyes onto carrageenan and itaconic acid-based superabsorbent hydrogel: Synthesis, characterization and isotherm analysis,
Journal of Hazardous Materials,
2022,
421, 126729. [
Crossref], [
Google Scholar], [
Publisher]
[10] F.A. Syahida, N.M.N. Nurul, M. Jeremy, Suzylawati I., Binary adsorption of textile dyes onto zwitterionic adsorbent coating: Performance study,
Current Research in Wastewater Management,
2021,
1, 3. [
Google Scholar], [
Publisher]
[11] M.A. Aseel , B.M. Ahmed , K.Y.A. Waleed , E.I. Samar, M.R.A. Munthir, M.M. Borhan, K.O.A. Ahmed, F.A. Ayad, Enhancement of adsorption of paracetamol drug on carbon nanotubes concerning wastewater treatment,
Engineered Science,
2022,
20, 321–329. [
Google Scholar]
[12] M.L. Sekirifa, M. Hadj-Mahammed, S. Pallier, L. Baameur, D. Richard, A.H. Al-Dujaili, Preparation and characterization of an activated carbon from a date stones variety by physical activation with carbon dioxide,
Journal of Analytical and Applied Pyrolysis,
2013,
99, 155-160. [
Crossref], [
Google Scholar], [
Publisher]
[13] S.A. Hamoudi, B. Hamdi, J. Brendlé, Tetracycline removal from water by adsorption on geomaterial, activated carbon and clay adsorbents,
Ecological Chemistry and Engineering S,
2021,
28, 303-328. [
Crossref], [
Google Scholar], [
Publisher]
[14] Z.A. Mosaa, A.T. Bader, A.M. Aljeboree, A.F. Alkaim, Adsorption and removal of textile dye (methylene blue mb) from aqueous solution by activated carbon as a model (apricot stone source waste) of plant role in environmental enhancement,
Plant Archives,
2019,
19, 910-914. [
Google Scholar], [
Publisher]
[15] A.M. Aljeboree, Z.D. Alhattab, U.S. Altimari, A.K.O. Aldulaim, A.K. Mahdi, A.F. Alkaim Enhanced removal of amoxicillin and chlorophenol as a model of wastewater pollutants using hydrogel nanocomposite: Optimization, thermodynamic, and isotherm studies,
Caspian Journal of Environmental Sciences,
2023,
21, 411–422. [
Crossref], [
Google Scholar], [
Publisher]
[16] Z.D. Alhattab, A.M. Aljeboree, M.A. Jawad, F.S. Sheri, A.K. Obaid Aldulaim, A.F. Alkaim, Highly adsorption of alginate/bentonite impregnated TiO
2 beads for wastewater treatment: Optimization, kinetics, and regeneration studies,
Caspian Journal of Environmental Sciences,
2023,
21, 657-664. [
Crossref], [
Google Scholar], [
Publisher]
[17] J. He, M. Shi, Y. Liang, B. Guo, Conductive adhesive self-healing nanocomposite hydrogel wound dressing for photothermal therapy of infected full-thickness skin wounds,
Chemical Engineering Journal,
2020,
394, 124888. [
Crossref], [
Google Scholar], [
Publisher]
[18] H.L. Longfei Gao, Q. Wang, G. Hu, Y. Xiong, Synergistic effect of hydrogen bonds and chemical bonds to constructa starch-based water-absorbing /retainin hydrogel composite reinforced with cellulose and poly(ethyleneglycol),
ACS Omega, 2021,
6, 35039-35049. [
Crossref], [
Google Scholar], [
Publisher]
[19] B. Gao, H. Yu, J. Wen, H. Zeng, T. Liang, F. Zuo, C. Cheng, Super-adsorbent poly (acrylic acid)/laponite hydrogel with ultrahigh mechanical property for adsorption of methylene blue,
Journal of Environmental Chemical Engineering,
2021,
9, 106346. [
Crossref], [
Google Scholar], [
Publisher]
[20] F. Tamaddon, E. Ahmadi-AhmadAbadi, E. Khoje-neamah, Nano-carboxymethylcellulose, polyacrylamide, and γ-Fe
2O
3-SO
3H cross-linked to a hydrophobic linker: An organic-inorganic hydrogel for adsorptive removal of dyes,
Journal of Molecular Structure,
2022,
1270, 133872. [
Crossref], [
Google Scholar], [
Publisher]
[21] C.B. Godiya, X. Cheng, D. Li, Z. Chen, X. Lu, Carboxymethyl cellulose/polyacrylamide composite hydrogel for cascaded treatment/reuse of heavy metal ions in wastewater,
Journal of Hazardous Materials,
2019,
364, 28-38. [
Crossref], [
Google Scholar], [
Publisher]
[22] B. Zhang, N.H. Jabarullah, A.F. Alkaim, S. Danshina, I.V. Krasnopevtseva, Y. Zheng, N. Geetha, Thermomechanical fatigue lifetime evaluation of solder joints in power semiconductors using a novel energy based modeling,
Soldering & Surface Mount Technology,
2021,
33, 187-194. [
Crossref], [
Google Scholar], [
Publisher]
[23] N.A. Hussain, A. Taifi, O.K.A. Alkadir, N.H. Obaid, Z.M. Abboud, A.M. Aljeboree, A.L. Al Bayaa, S.A. Abed, A.F. Alkaim, Role of pomegranate peels as an activated carbon for removal of pollutants,
IOP conference series: Earth and Environmental Science, IOP Publishing,
2022, 012028. [
Crossref], [
Google Scholar], [
Publisher]
[24] B. Gao, H. Yu, J. Wen, H. Zeng, T. Liang, F. Zuo, C. Cheng, Super-adsorbent poly (acrylic acid)/laponite hydrogel with ultrahigh mechanical property for adsorption of methylene blue,
Journal of Environmental Chemical Engineering,
2021,
9, 106346. [
Crossref], [
Google Scholar], [
Publisher]
[25] A. Mokhtar, S. Abdelkrim, A. Sardi, A. Benyoub, H. Besnaci, R. Cherrak, M. Hadjel, B. Boukoussa, Preparation and characterization of anionic composite hydrogel for dyes adsorption and filtration: Non-linear isotherm and kinetics modeling,
Journal of Polymers and the Environment,
2020,
28, 1710-1723. [
Crossref], [
Google Scholar], [
Publisher]
[26] D. Takić Miladinov, S. Tomić, S. Stojanović, J. Najdanović, J. Filipović, M. Trajanović, S. Najman, Synthesis, Swelling properties and evaluation of genotoxicity of hydrogels based on (meth) acrylates and itaconic acid,
Materials Research,
2016,
19, 1070-1079. [
Crossref], [
Google Scholar], [
Publisher]
[27] Y. Liu, S. Song, S. Liu, X. Zhu, P. Wang, Application of nanomaterial in hydrogels related to wound healing,
Journal of Nanomaterials,
2022,
2022, 1-11. [
Crossref], [
Google Scholar], [
Publisher]
[28] V. Bakhshi, H. Poursadegh, M.S. Amini-Fazl, D. Salari, S. Javanbakht, Synthesis and characterization of bio-nanocomposite hydrogel beads based on magnetic hydroxyapatite and chitosan: A pH-sensitive drug delivery system for potential implantable anticancer platform,
Polymer Bulletin,
2023, 1-20. [
Crossref], [
Google Scholar], [
Publisher]
[29] M.X. Mao XinYou, W.L. Wang Lan, G.S. Gu ShiQing, D.Y. Duan YanYan, Z.Y. Zhu YunQing, W.C. Wang ChuanYi, E. Lichtfouse, Synthesis of a three-dimensional network sodium alginate-poly (acrylic acid)/attapulgite hydrogel with good mechanic property and reusability for efficient adsorption of Cu
2+ and Pb
2+,
2018. [
Crossref], [
Google Scholar], [
Publisher]
[30] S. Thakur, J. Chaudhary, A. Thakur, O. Gunduz, W.F. Alsanie, C. Makatsoris, V.K. Thakur, Highly efficient poly (acrylic acid-co-aniline) grafted itaconic acid hydrogel: Application in water retention and adsorption of rhodamine B dye for a sustainable environment,
Chemosphere,
2022,
303, 134917. [
Crossref], [
Google Scholar], [
Publisher]
[31] T. Vieira, S.E. Artifon, C.T. Cesco, P.B. Vilela, V.A. Becegato, A.T. Paulino, Chitosan-based hydrogels for the sorption of metals and dyes in water: Isothermal, kinetic, and thermodynamic evaluations,
Colloid and Polymer Science,
2021,
299, 649-662. [
Crossref], [
Google Scholar], [
Publisher]
[32] A. Taifi, O.K.A. Alkadir, A.A. Oda, A.M. Aljeboree, A.L. Al Bayaa, A.F. Alkaim, S.A. Abed, Biosorption by environmental, natural and acid-activated orange peels as low-cost aadsorbent: optimization of disperse blue 183 as a model,
IOP Conference Series: Earth and Environmental Science, IOP Publishing,
2022, 012009. [
Google Scholar]
[33] S. Thakur, J. Chaudhary, A. Thakur, O. Gunduz, W.F. Alsanie, C. Makatsoris, V.K. Thakur, Highly efficient poly (acrylic acid-co-aniline) grafted itaconic acid hydrogel: Application in water retention and adsorption of rhodamine B dye for a sustainable environment,
Chemosphere,
2022,
303, 134917. [
Crossref], [
Google Scholar], [
Publisher]