Author:
Alyousef Haifa,Alotaibi Badriah M.,Ben Yahia Mohamed,Alanazi Meznah M.,Alsaif Norah A.
Abstract
AbstractA quartz crystal adsorbent coated with 5,10,15,20-tetrakis(4-methylphenyl) porphyrin was used to examine the complexation phenomenon of three metallic ions [aluminum(III), iron(III) and indium(III)]. The aim is to select the appropriate adsorbate for metalloporphyrin fabrication. The equilibrium adsorption isotherms of tetrakis(4-methylphenyl) porphyrin were performed at four temperatures (from 300 to 330 K) through the quartz crystal microbalance (QCM) method. Subsequently, the experimental data were analyzed in order to develop a thorough explanation of the complexation mechanisms. The experimental results indicated that the aluminum(III) chloride is the adequate material for metalloporphyrin application. Theoretical investigation was established through physics adsorption models in order to analyze the experimental isotherms. The AlCl3 isotherms were modeled via a single-layer adsorption model which is developed using the ideal gas law. Whereas, the FeCl3 isotherms were interpreted via a single-layer adsorption which includes the lateral interactions parameters (real gas law), indicating the lowest stability of the formed iron-porphyrin complex. The participation of the chloride ions in the double-layers adsorption of InCl3 was interpreted via layer by layer formulation. Interestingly, the physicochemical investigation of the three adopted models indicated that the tetrakis(4-methylphenyl) porphyrin adsorption was an endothermic process and that the aluminum(III) chloride can be recommended for an industrial application because it presents the highest adsorption energy (chemical bonds with porphyrins).
Funder
the Deputyship for Research & Innovation, Ministry of Education in Saudi Arabia
Publisher
Springer Science and Business Media LLC
Reference38 articles.
1. Moro, P., Donzello, M. P., Ercolani, C., Monacelli, F. & Moretti, G. tetrakis-2,3-[5,6-di-(2-pyridyl)-pyrazino]porphyrazine, and its Cu(II) complex as sensitizers in the TiO2-based photo-degradation of 4-nitrophenol. J. Photochem. Photobiol. A. 220, 77–83 (2011).
2. Sayyad, M. H. et al. Synthesis of Zn(II) 5,10,15,20-tetrakis(4′-isopropylphenyl) porphyrin and its use as a thin film sensor. Appl. Phys. A. 98, 103–104 (2010).
3. Kadish, K. M., Smith, K. M. & Guilard, R. The Porphyrin Handbook, Phthalocyanines: Spectroscopic and Electrochemical Characterization (Academic Press, 2003).
4. Ponka, P. Cell Biology of heme. Am. J. Med. Sci. 318, 241–256 (1999).
5. Lindsey, J. S. & Woodford, J. N. A simple method for preparing magnesium porphyrins. Inorg. Chem. 34, 1063–1069 (1995).
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