Experimental and Theoretical Monitoring of the Adsorption of 2,4-Dimethylphenol on Coturnix Coturnix Japonica Eggshell
Year 2024,
Volume: 19 Issue: 2, 144 - 160, 25.11.2024
Belgin Tunalı
,
Deniz Türköz Altuğ
,
Taner Kalaycı
,
Neslihan Kaya Kınaytürk
Abstract
Phenolic compounds are serious risks to both the environment and human health. It has led to an increase in the number of scientific studies on the elimination of these pollutants. Among these compounds, 2,4-Dimethylphenol is particularly common and therefore of significant concern. This study investigates the removal of this chemical using pure and calcined Coturnix-Coturnix Japonica eggshells as adsorbents. For theoretical calculations of 2,4-Dimethylphenol, the Density Functional Theory B3LYP/ 6311++G(d,p) basis set is used. These calculations provided information about the molecule's geometry, molecular electrostatics potential surface map, frontier molecular orbitals, and chemical activity values. To validate the experimental findings, theoretical infrared spectra for 2,4- Dimethylphenol were calculated and compared with experimental results. Then, the adsorption process of 2,4- Dimethylphenol on pure and calcined eggshells was described. Experimental infrared spectral results were supported by theoretical calculations and approved the adsorption process via strong wavenumbers in the related spectrum. The surface morphology of eggshells was characterized using light microscopy, Atomic Force Microscopy, and Scanning Electron Microscopy.
Additionally, demonstrated strong agreement between experimental and theoretical infrared spectra for pure 2,4- Dimethylphenol. Post-adsorption Infrared spectral analysis showed that 2,4- Dimethylphenol adsorbed to calcined eggshells. This study highlights the potential of mentioned eggshells as natural, promising materials for environmental remediation and pollution control. Thus, it can contribute to improving environmental and human health.
Ethical Statement
As the authors of this study, we declare that we do not have any ethics committee approval and/or informed consent statement.
Supporting Institution
Onyedi Eylül University under Research Projects
Project Number
BAP-22-1003-006, 0118-NAP-10
Thanks
The current study was supported by the Scientific Research Commission of Bandırma Onyedi Eylül University under Research Projects with Foundation Number BAP-22-1003-006 and was supported by the Research Projects with Foundation Number 0118-NAP-10, Burdur Mehmet Akif Ersoy University, Scientific Research Commission, Turkey.
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- M. Gaonkar, A. P. Chakraborty, and A. Professor, “Application of eggshell as fertilizer and calcium supplement tablet”, International Journal of Innovative Research in Science, Engineering and Technology, 3297, 2007.
- A. Schaafsma, J. J. van Doormaal, F. A. J. Muskiet, G. J. H. Hofstede, I. Pakan, and E. van der Veer, “Positive effects of a chicken eggshell powder-enriched vitamin–mineral supplement on femoral neck bone mineral density in healthy late post-menopausal Dutch women”, British Journal of Nutrition, 87(3), 267–275, 2002
- I. M. Muhammad, U. a El-Nafaty, S. Abdulsalam, and Y. I. Makarfi, “Removal of Oil from Oil Produced Water Using Eggshell”, Civil and Environmental Research, 2(8), 52–64, 2012.
- A. H. Jendia, S. Hamzah, A. A. Abuhabib, and N. M. El-Ashgar, “Removal of nitrate from groundwater by eggshell biowaste”, Water Science Technology: Water Supply, 20(7), 2514–2529, 2020.
- A. Rahmani-Sani, P.Sing, P. Raizada, E.C. Lima, I. Anastopoulos, D. A. Giannakoudakis, S. Sivamani, T.A. Dontsova, and A. Hosseini-Bandegharaei, “Use of chicken feather and eggshell to synthesize a novel magnetized activated carbon for sorption of heavy metal ions”, Bioresour Technol, 297, 122452, 2020.
- T. Y. Lin, W. S. Chai, S.J. Chen, J. Y. Shih, A. K. Koyande, B.L. Liu, and Y.K. Chang “Removal of soluble microbial products and dyes using heavy metal wastes decorated on eggshell”, Chemosphere, 270, 128615, 2021.
- A. Laca, A. Laca, and M. Díaz, “Eggshell waste as catalyst: A review”, Journal of Environmental Management, 197, 351–359, 2017.
- N. K. Kinaytürk, B. Tunali, and D. Türköz Altuǧ, “Eggshell as a biomaterial can have a sorption capability on its surface: A spectroscopic research”, Royal Society Open Science, 8(6), 2021.
- J. A. P. M.J. Frisch, G.W. Trucks, H.B. Schlegel,G.E. Suzerain, M.A. Robb, J.R. Cheeseman Jr.,J.A. Montgomery, T. Vreven, K.N. Kudin, J.C. Bu-rant, J.M. Millam, S.S. Iyengar, J. Tomasi, V. Barone,B. Mennucci, M. Cossi, G. Scalmani, N. Rega,G.A. Petersson, and H. Nakat, “Gaussian 09”, 2003.
- P. Pulay, G. Fogarasi, G. Pongor, J. E. Boggs, and A. Vargha, “Combination of theoretical ab initio and experimental information to obtain reliable harmonic force constants. Scaled quantum mechanical (sqm) force fields for glyoxal, acrolein, butadiene, formaldehyde, and ethylene”, Journal of American Chemical Society, 105(24), 7037–7047, 1983.
- T. Sundius, “Molvib-A flexible program for force field calculations”, Journal of Molecular Structure, 218, 321-326, 1990.
- T. Sundius, “Scaling of ab initio force fields by MOLVIB”, Vibrational Spectroscopy, 29, 89-95, 2002.
- R. El Mouhi, O. Daoui, A. Fitri, A. T. Benjelloun, S. Khattabi, M. Benzakour, M. Mcharfi, and M. Kurban, “A strategy to enhance VOC of π-conjugated molecules based on thieno[2,3-b] indole for applications in bulk heterojunction organic solar cells using DFT, TD-DFT, and 3D-QSPR modeling studies”, New Journal of Chemistry, 47(2), 812–827, 2022.
- R. El Mouhi, A. Slimi, A. Fitri, A. T. Benjelloun, S. ElKhattabi, M. Benzakour, M. Mcharfi, and M. Kurban, “DFT, DFTB and TD-DFT theoretical investigations of π-conjugated molecules based on thieno[2,3-b] indole for dye-sensitized solar cell applications”, Physica B Condensed Matter, 636, 413850, 2022.
- P. Divya and V. Bena Jothy, “Density functional theoretical analysis with experimental, invitro bioactivity and molecular docking investigations on the pesticide Albendazole”, Chemical Physics Letter, 695, 1–7, 2018.
- P. J. A. Madeira, P. J. Costa, M. T. Fernandez, J. A. M. Simões, and J. P. Leal, “Determination of Gas-Phase Acidities of Dimethylphenols: Combined experimental and theoretical study”, Journal of American Society Mass Spectrometry, 19(11), 1590–1599, 2008
- T. Kalaycı, N. K. Kınaytürk, and B. Tunalı, “Experimental and theoretical investigations (Ftir, Uv-Vis Spectroscopy, Homo-Lumo, Nlo and Mep analysis) of Aminothiophenol Isomers”, Bullutein Chemical Society Ethiopia, 35(3), 2021.
- S. Celik, G. Yilmaz, S. Akyuz, and A. E. Ozel, “Shedding light into the biological activity of aminopterin, via molecular structural, docking, and molecular dynamics analyses”, Journal of Biomolecular Structure Dynamics, 1-22, 2023.
[41] N. K. Kinaytürk, T. Kalayci, B. Tunali, and D. Türköz Altuğ, “A Spectroscopic Approach to Compare the Quantum Chemical Calculations and Experimental Characteristics of Some Organic Molecules; Benzene, Toluene, P-Xylene, P-Toluidine”, Chemical Physics, 570, 111905, 2022.
- N. Kaya Kınaytürk, T. Kalaycı, and B. Tunalı, “Experimental and computational investigations on the molecular structure, vibrational spectra, electronic properties, and molecular electrostatic potential analysis of phenylenediamine isomers”, Spectroscopy Letters, 54(9), 93–706, 2021.
- X. Zhou, Q. Zhou, H. Chen, J. Wang, Z. Liu, and R. Zheng, “Influence of dimethylphenol isomers on electrochemical degradation: Kinetics, intermediates, and DFT calculation”, Science of the Total Environment, 794, 2021.
- “Phenol,2,4-dimethyl”, 2023.[Online].Available: https://webbook.nst.gov/cg/cbook.cg?ID=105-67-9.
- T. Kalaycı, D. Türköz Altuğ, N. Kaya Kınaytürk, and B. Tunalı, “Quantum chemical calculations of m-toluidine and investigation of its adsorption on eggshells”, Erzincan Üniversitesi Fen Bilimleri Enstitüsü Dergisi, 16(1), 169–183, 2023.
- B. Tunalı, D. Türköz Altuğ, N. Kaya Kınaytürk, and G. Tüzün, “Removal of heavy metals (copper and lead) using waste eggshell with two different species and three different forms”, Mehmet Akif Ersoy Üniversitesi Fen Bilimleri Enstitüsü Dergisi, 12(1), 434–445, 2021.
- S. G. Mohammad, S. M. Ahmed, and M. M. H. El-Sayed, “Removal of copper (II) ions by eco-friendly raw eggshells and nano-sized eggshells: A comparative study”, Chemical Engineering Communications, 209(1), 83–95, 2022.
Year 2024,
Volume: 19 Issue: 2, 144 - 160, 25.11.2024
Belgin Tunalı
,
Deniz Türköz Altuğ
,
Taner Kalaycı
,
Neslihan Kaya Kınaytürk
Project Number
BAP-22-1003-006, 0118-NAP-10
References
- S. I. Mustapha, F. A. Aderibigbe, T. L. Adewoye, I. A. Mohammed, and T. O. Odey, “Silver and titanium oxides for the removal of phenols from pharmaceutical wastewater”, Mater Today Proceeding, 38, 816–822, 2021.
- Y. Li, H. Liu, L. Zhang, C. Lou, and Y. Wang, “Phenols in soils and agricultural products irrigated with reclaimed water”, Environmental Pollution, 276, 116690, 2021.
- K. P. Berger, K.R. Kogut, A. Bradman, J. She,Q. Gavin, R.Zahedi, K.L. Perra, K.G. Harley, “Personal care product use as a predictor of urinary concentrations of certain phthalates, parabens, and phenols in the Hermosa study”, Journal of Exposure Science & Environmental Epidemiology, 29 (1), 21–32, 2019.
- G. W. Holcombe, G. L. Phipps, and J. T. Fiandt, “Effects of phenol, 2,4-Dimethylphenol, 2,4-dichlorophenol, and pentachlorophenol on embryo, larval, and early-juvenile fathead minnows (Pimephales promelas)”, Archives of Environmental Contamination and Toxicology, 11, 73-78 1982.
- I. V. Gruzdev, I. M. Kuzivanov, I. G. Zenkevich, and B. M. Kondratenok, “Determination of methyl-substituted phenols in water by gas chromatography with preliminary iodination”, Journal of Analytical Chemistry, 68(2), 161–169, 2013.
- J. Miyazaki, N. Furuta, and T. Miyauchi, “Curing of phenol-formaldehyde resin mixed with wood preservatives”, Journal of Applied Polymer Science 128(5), 2896–2901, 2013.
- F. B. Daniel, M. Robinson, G. R. Olson, R. G. York, and L. W. Condie, “Ten and ninety-day toxicity studies of 2,4-dimethylphenol in Sprague-dawley rats”, Drug Chemical Toxicology, 16(4), 51–368, 1993.
- O. Onyekwere, C. J. Okonkwo, A. B. Okoroafor, and C. J. Okonkwo, “Occurrence and risk assessment of phenolic endocrine disrupting chemicals in shallow groundwater resource from selected Nigerian rural settlements”, Ovidius University Annals of Chemistry, 30(2), 101–107, 2019.
- U. States and E. Protection, “EPA Ambient Water Quality Criteria for Cadmium”, no. October, US Environmental Protection Agency, 1980.
- A. Romero, A. Santos, and F. Vicente, “Chemical oxidation of 2,4-dimethylphenol in soil by heterogeneous Fenton process”, Journal of Hazardous Materials, 162( 2–3), 785–790, 2009.
- M. Li, X. Wang, C. Lu, R. Li, J. Zhang, S. Dong, L. Yang, L. Xue, J. Chen, and W. Wang., “Nitrated phenols and the phenolic precursors in the atmosphere in urban Jinan, China”, Science of the Total Environment, 714, 136760, 2020,
- A. Environment, Assessment report on xylenes for developing an ambient air quality objectives, RWDI West Inc,114 pages, 2004.
- P. Raizada, A. Sudhaik, P. Singh, P. Shandilya, V. K. Gupta, A. Hosseini-Bandegharaei, and A. Agrawal, “Ag3PO4 modified phosphorus and sulphur co-doped graphitic carbon nitride as a direct Z-scheme photocatalyst for 2, 4-dimethyl phenol degradation”, Journal of Photochemistry and Photobiology A Chemistry, 374, 22–35, 2019.
- J. P. Ghosh, K. E. Taylor, J. K. Bewtra, and N. Biswas, “Laccase-catalyzed removal of 2,4-dimethylphenol from synthetic wastewater: Effect of polyethylene glycol and dissolved oxygen”, Chemosphere, 71(9), 1709–1717, 2008.
- M. Al-Obaidi, B. Al-Nedawe, A. Mohammad, and I. Mujtaba, “Response surface methodology for predicting the dimethylphenol removal from wastewater via reverse osmosis process”, Chemical Product and Process Modeling, 16(3), 193–203, 2021.
- Canadian Water Quality Guidelines for the Protection of Aquatic Life, [Online]. Available: https://ccme.ca/en/res/phenols-en-canadian-water-quality-guidelines-for-the-protection-of-aquatic-life.pdf, Accessed:1999
- K. Sharma, P. Raizada, A. Hosseini-Bandegharaei, P. Thakur, R. Kumar, V.K. Thakur, V. Nguyen, P. Singh, “Fabrication of efficient CuO / graphitic carbon nitride based heterogeneous photo-Fenton like catalyst for degradation of 2, 4 dimethyl phenol”, Process Safety and Environmental Protection, 142, 63–75, 2020.
- M. Trapido, Y. Veressinina, and R. Munter, “Advanced oxidation processes for degradation of 2,4-Dichlo- and 2,4-Dimethylphenol”, Journal of Environmental Engineering, 124(8), 690–694, 1998.
- F. Vicente, J. M. Rosas, A. Santos, and A. Romero, “Improvement soil remediation by using stabilizers and chelating agents in a Fenton-like process”, Chemical Engineering Journal, 172(2–3), 689–697, 2011.
- L. Rucká, J. Nešvera, and M. Pátek, “Biodegradation of phenol and its derivatives by engineered bacteria: current knowledge and perspectives”, World Journal of Microbiology and Biotechnology, 33(9), 1–8, 2017.
- C. Stratton and J. Stokes, “Multidisciplinary Remediation: An Analysis of Chlorinated Metabolites in Groundwater Contaminated by Pentachlorophenol Following 15 Years of Air/Biosparging, Phytoremediation, and In-Situ Chemical Oxidation Protocols, Mississippi Water Resources Conference, 31–37, 2016.
- M. Waheed et al., “Eggshell calcium: A cheap alternative to expensive supplements”, Trends in Food Science Technology, 9, 1219–230, 2019.
- M. Gaonkar, A. P. Chakraborty, and A. Professor, “Application of eggshell as fertilizer and calcium supplement tablet”, International Journal of Innovative Research in Science, Engineering and Technology, 3297, 2007.
- A. Schaafsma, J. J. van Doormaal, F. A. J. Muskiet, G. J. H. Hofstede, I. Pakan, and E. van der Veer, “Positive effects of a chicken eggshell powder-enriched vitamin–mineral supplement on femoral neck bone mineral density in healthy late post-menopausal Dutch women”, British Journal of Nutrition, 87(3), 267–275, 2002
- I. M. Muhammad, U. a El-Nafaty, S. Abdulsalam, and Y. I. Makarfi, “Removal of Oil from Oil Produced Water Using Eggshell”, Civil and Environmental Research, 2(8), 52–64, 2012.
- A. H. Jendia, S. Hamzah, A. A. Abuhabib, and N. M. El-Ashgar, “Removal of nitrate from groundwater by eggshell biowaste”, Water Science Technology: Water Supply, 20(7), 2514–2529, 2020.
- A. Rahmani-Sani, P.Sing, P. Raizada, E.C. Lima, I. Anastopoulos, D. A. Giannakoudakis, S. Sivamani, T.A. Dontsova, and A. Hosseini-Bandegharaei, “Use of chicken feather and eggshell to synthesize a novel magnetized activated carbon for sorption of heavy metal ions”, Bioresour Technol, 297, 122452, 2020.
- T. Y. Lin, W. S. Chai, S.J. Chen, J. Y. Shih, A. K. Koyande, B.L. Liu, and Y.K. Chang “Removal of soluble microbial products and dyes using heavy metal wastes decorated on eggshell”, Chemosphere, 270, 128615, 2021.
- A. Laca, A. Laca, and M. Díaz, “Eggshell waste as catalyst: A review”, Journal of Environmental Management, 197, 351–359, 2017.
- N. K. Kinaytürk, B. Tunali, and D. Türköz Altuǧ, “Eggshell as a biomaterial can have a sorption capability on its surface: A spectroscopic research”, Royal Society Open Science, 8(6), 2021.
- J. A. P. M.J. Frisch, G.W. Trucks, H.B. Schlegel,G.E. Suzerain, M.A. Robb, J.R. Cheeseman Jr.,J.A. Montgomery, T. Vreven, K.N. Kudin, J.C. Bu-rant, J.M. Millam, S.S. Iyengar, J. Tomasi, V. Barone,B. Mennucci, M. Cossi, G. Scalmani, N. Rega,G.A. Petersson, and H. Nakat, “Gaussian 09”, 2003.
- P. Pulay, G. Fogarasi, G. Pongor, J. E. Boggs, and A. Vargha, “Combination of theoretical ab initio and experimental information to obtain reliable harmonic force constants. Scaled quantum mechanical (sqm) force fields for glyoxal, acrolein, butadiene, formaldehyde, and ethylene”, Journal of American Chemical Society, 105(24), 7037–7047, 1983.
- T. Sundius, “Molvib-A flexible program for force field calculations”, Journal of Molecular Structure, 218, 321-326, 1990.
- T. Sundius, “Scaling of ab initio force fields by MOLVIB”, Vibrational Spectroscopy, 29, 89-95, 2002.
- R. El Mouhi, O. Daoui, A. Fitri, A. T. Benjelloun, S. Khattabi, M. Benzakour, M. Mcharfi, and M. Kurban, “A strategy to enhance VOC of π-conjugated molecules based on thieno[2,3-b] indole for applications in bulk heterojunction organic solar cells using DFT, TD-DFT, and 3D-QSPR modeling studies”, New Journal of Chemistry, 47(2), 812–827, 2022.
- R. El Mouhi, A. Slimi, A. Fitri, A. T. Benjelloun, S. ElKhattabi, M. Benzakour, M. Mcharfi, and M. Kurban, “DFT, DFTB and TD-DFT theoretical investigations of π-conjugated molecules based on thieno[2,3-b] indole for dye-sensitized solar cell applications”, Physica B Condensed Matter, 636, 413850, 2022.
- P. Divya and V. Bena Jothy, “Density functional theoretical analysis with experimental, invitro bioactivity and molecular docking investigations on the pesticide Albendazole”, Chemical Physics Letter, 695, 1–7, 2018.
- P. J. A. Madeira, P. J. Costa, M. T. Fernandez, J. A. M. Simões, and J. P. Leal, “Determination of Gas-Phase Acidities of Dimethylphenols: Combined experimental and theoretical study”, Journal of American Society Mass Spectrometry, 19(11), 1590–1599, 2008
- T. Kalaycı, N. K. Kınaytürk, and B. Tunalı, “Experimental and theoretical investigations (Ftir, Uv-Vis Spectroscopy, Homo-Lumo, Nlo and Mep analysis) of Aminothiophenol Isomers”, Bullutein Chemical Society Ethiopia, 35(3), 2021.
- S. Celik, G. Yilmaz, S. Akyuz, and A. E. Ozel, “Shedding light into the biological activity of aminopterin, via molecular structural, docking, and molecular dynamics analyses”, Journal of Biomolecular Structure Dynamics, 1-22, 2023.
[41] N. K. Kinaytürk, T. Kalayci, B. Tunali, and D. Türköz Altuğ, “A Spectroscopic Approach to Compare the Quantum Chemical Calculations and Experimental Characteristics of Some Organic Molecules; Benzene, Toluene, P-Xylene, P-Toluidine”, Chemical Physics, 570, 111905, 2022.
- N. Kaya Kınaytürk, T. Kalaycı, and B. Tunalı, “Experimental and computational investigations on the molecular structure, vibrational spectra, electronic properties, and molecular electrostatic potential analysis of phenylenediamine isomers”, Spectroscopy Letters, 54(9), 93–706, 2021.
- X. Zhou, Q. Zhou, H. Chen, J. Wang, Z. Liu, and R. Zheng, “Influence of dimethylphenol isomers on electrochemical degradation: Kinetics, intermediates, and DFT calculation”, Science of the Total Environment, 794, 2021.
- “Phenol,2,4-dimethyl”, 2023.[Online].Available: https://webbook.nst.gov/cg/cbook.cg?ID=105-67-9.
- T. Kalaycı, D. Türköz Altuğ, N. Kaya Kınaytürk, and B. Tunalı, “Quantum chemical calculations of m-toluidine and investigation of its adsorption on eggshells”, Erzincan Üniversitesi Fen Bilimleri Enstitüsü Dergisi, 16(1), 169–183, 2023.
- B. Tunalı, D. Türköz Altuğ, N. Kaya Kınaytürk, and G. Tüzün, “Removal of heavy metals (copper and lead) using waste eggshell with two different species and three different forms”, Mehmet Akif Ersoy Üniversitesi Fen Bilimleri Enstitüsü Dergisi, 12(1), 434–445, 2021.
- S. G. Mohammad, S. M. Ahmed, and M. M. H. El-Sayed, “Removal of copper (II) ions by eco-friendly raw eggshells and nano-sized eggshells: A comparative study”, Chemical Engineering Communications, 209(1), 83–95, 2022.