Features of complex formation of a fibrous complexite with nickel ions in water–dioxane mixtures
DOI:
https://doi.org/10.15587/1729-4061.2019.162359Keywords:
polyacrylonitrile fibre, complexation, solvation, stability constants, water-1, 4-dioxaneAbstract
The study deals with the complex-forming properties of a fibrous complexing agent (complexite) NAG with respect to nickel(II) ions in a mixed solvent water-1,4-dioxane. Spectral tests indicate that the absorption of nickel(II) ions by the NAG fibrous complexer occurs according to the mechanism of complexation. The factors affecting the complex formation of the NAG complexite with nickel(II) ions in water-1,4-dioxane mixtures are established, and the stability constants of hydroxamic and amidoxime groups are calculated depending on the pH values of the medium and the composition of the solvent.
The influence of the solvation parameter on the composition and stability of the complexes under study with nickel(II) ions has been established. The solvation characteristics of the NAG complexite and complexes with nickel(II) ions depend on the nature of the mixed solvent in which the complexation reaction takes place. The solvation effects in the water-1,4-dioxane mixture with a molar fraction of dioxane of 0.00–0.17 level the stability of the resulting complexes.
It is shown that the pH range of 6.2–3.8 mixed solvent creates the conditions for the formation of a wider composition and structure of the range of coordination units with different proportions of their content in the polymer. Apart from the hydroxamic, deprotonated amidoxime groups take part in the complexation. The preferred fixation of functional groups on the surface of NAG fibres leads to a high local concentration of the reaction centres and enhances the cooperativeness of the process, facilitating easy orientation of the groups during the formation of mixed-ligand coordination nodes. The stability constants of the deprotonated amidoxime groups of the the NAG complexite with nickel(II) ions are estimated. The study has proved dependence on the composition of the solventReferences
- Saldadze, K. M., Kopylova-Valova, V. D. (1980). Kompleksoobrazuyushchie ionity (kompleksity). Moscow: Himiya, 336.
- Iqbal, M., Saeed, A., Zafar, S. I. (2007). Hybrid biosorbent: An innovative matrix to enhance the biosorption of Cd(II) from aqueous solution. Journal of Hazardous Materials, 148 (1-2), 47–55. doi: https://doi.org/10.1016/j.jhazmat.2007.02.009
- Shin, D. H., Ko, Y. G., Choi, U. S., Kim, W. N. (2004). Design of High Efficiency Chelate Fibers with an Amine Group To Remove Heavy Metal Ions and pH-Related FT-IR Analysis. Industrial & Engineering Chemistry Research, 43 (9), 2060–2066. doi: https://doi.org/10.1021/ie030696f
- Miroshnik, L. V., Korovnikova, N. I., Shabadash, Y. V. (2006). Stability of copper(II) complexes with cellulose complexite in water-dioxane mixtures. Russian Journal of Inorganic Chemistry, 51 (4), 649–655. doi: https://doi.org/10.1134/s0036023606040255
- Korovnikova, N., Dubyna, O. (2017). Research into complexing properties of polyacrylonitrile complexite in the mixtures of water-dioxane. Eastern-European Journal of Enterprise Technologies, 5 (6 (89)), 63–69. doi: https://doi.org/10.15587/1729-4061.2017.110135
- Miroshnik, L. V., Korovnikova, N. I. (2000). Ion-exchange, solvation, and acid properties of complexing polyacrylonitrile fiber in water-dioxane mixtures. Russian Journal of Applied Chemistry, 73 (1), 44–50.
- Pomogaylo, A. D., Uflyand, I. E. (1991). Makromolekulyarnye metallohelaty. Moscow: Himiya, 304.
- Burger, K. (1983). Solvation, Ionic and Complex Formation Reactions in Non-Aqeuous Solvents. Akademia Kiado, 256.
- Miroshnik, L. V., Korovnikova, N. I., Aleksandrov, A. V., Dubyna, A. M. (2008). The influence of cellulose complexite swelling on its protolytic properties in aqueous-organic mixtures. Russian Journal of Physical Chemistry A, 82 (9), 1484–1489. doi: https://doi.org/10.1134/s0036024408090148
- Miroshnik, L. V. (2001). The peculiarities of high-molecular complex compounds of metal ions with fibrous complexites in water-organic mixtures. Journal of Molecular Liquids, 91 (1-3), 245–253. doi: https://doi.org/10.1016/s0167-7322(01)00169-6
- Moghimi, A., Mosalai, H., Moghadam, H. (2012). Solid Phase Extraction of Trace Copper(II) Using Modified Nano Polyacrylonitrile Fiber. Journal of Chemical Health Risks, 2 (2), 25–36.
- Yoon, S., Kim, S., Cho, C.-W., Yun, Y.-S. (2016). The Preparation of Modified Industrial Waste Polyacrylonitrile for the Adsorptive Recovery of Pt(IV) from Acidic Solutions. Materials, 9 (12), 988. doi: https://doi.org/10.3390/ma9120988
- Lim, A., Song, M.-H., Cho, C.-W., Yun, Y.-S. (2016). Development of Surface-Modified Polyacrylonitrile Fibers and Their Selective Sorption Behavior of Precious Metals. Applied Sciences, 6 (12), 378. doi: https://doi.org/10.3390/app6120378
- Huang, F., Xu, Y., Liao, S., Yang, D., Hsieh, Y.-L., Wei, Q. (2013). Preparation of Amidoxime Polyacrylonitrile Chelating Nanofibers and Their Application for Adsorption of Metal Ions. Materials, 6 (3), 969–980. doi: https://doi.org/10.3390/ma6030969
- Zhou, X., Wei, J., Zhang, H., Liu, K., Wang, H. (2014). Adsorption of phthalic acid esters (PAEs) by amphiphilic polypropylene nonwoven from aqueous solution: The study of hydrophilic and hydrophobic microdomain. Journal of Hazardous Materials, 273, 61–69. doi: https://doi.org/10.1016/j.jhazmat.2014.03.029
- Zhao, W., Liu, B., Chen, J. (2014). Preparation of Amino-Modified PAN Fibers with Triethylenetetramine as Aminating Reagents and Their Application inCO2Adsorption. Journal of Nanomaterials, 2014, 1–7. doi: https://doi.org/10.1155/2014/940908
- Thennadil, S. N. (2008). Relationship between the Kubelka-Munk scattering and radiative transfer coefficients. Journal of the Optical Society of America A, 25 (7), 1480. doi: https://doi.org/10.1364/josaa.25.001480
- Pilipenko, A. T., Zul'figarov, O. S. (1989). Gidroksamovye kisloty. Moscow: Nauka, 312.
- Yuferova, I. B., Fadeeva, V. I., Tihomirova, T. I. (1989). Kompleksoobrazovanie medi (II) s alkilamidoksimom v vodnom rastvore i v faze kremnezemnogo sorbenta. Zhurn. neorg. himii, 34 (2), 361–365.
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Copyright (c) 2019 Natalia Korovnikova, Oleksandr Dubyna, Volodymyr Oliinik
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