Structure – Property Relationships for Dyes of Different Nature

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Systematic analysis of quantitative structure – property relationships for dyes of different nature has been reviewed. On the basis of the experimental results published in the literature and theoretical evaluation of amphiphilic and electrophilic properties of dyes of different nature several basic conclusions of scientific and practical importance are proposed. It was found that water/octanol partition coefficients exhibit correlation with dye partition between hydrophobic synthetic fibres and dyebath as well as dye affinity. Hydrophobicity of dyes controls several technical properties of dyes and dyeings, such as wash fastness and light fastness, migration factor, rate of dyeing and fixation rate. Energy of frontier electronic orbitals (HOMO and LUMO energies) correlates with different properties characterizing redox properties of dyes: oxidative and reductive destruction in chemical reactions, photochemical and biochemical destruction of dyes, wash and light fastness of dyeings. The results of this study are useful for physico-chemical analysis of dye sorption by textile fibres, destruction of dyes in polymers and solutions as well as for design of new dyes of high quality.

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Advanced Materials Research (Volumes 821-822)

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488-492

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September 2013

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© 2013 Trans Tech Publications Ltd. All Rights Reserved

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[1] S. Timofei, W. Schmidt, L. Kurunczi, S. Simon. Dyes and Pigments, 47. P. 5-16 (2000).

Google Scholar

[2] F.Y. Telegin. Design, Materials. Technology, No. 4(11). P. 163-167 (2009) (in Russian).

Google Scholar

[3] Chemical software JChem. www. chemaxon. com/jchem. Program is licensed to ISUCT.

Google Scholar

[4] CambridgeSoft ChemOffice 2010 Suite 12. 0. www. cambridgesoft. com. Program is licensed to WTU.

Google Scholar

[5] J. Szadowski, J. Přikryl, K. Wojciechowski. Chemia Stosowana, 31, No. 3. P. 415-421 (1987).

Google Scholar

[6] J. Szadowski. J. Soc. Dyers Colour. 97. P. 72-75 (1981).

Google Scholar

[7] F.Y. Telegin, E.S. Khaylenko, P.F. Telegin. Book of papers 21st IFATCC Congress, Barcelona, 10 pp (2008).

Google Scholar

[8] G. Seu. Dyes and Pigm. 37, No. 2. P. 103-112 (1998).

Google Scholar

[9] P. Savarino. Dyes and Pigm. 9. P. 295-304 (1988).

Google Scholar

[10] F.Y. Telegin, E.S. Khaylenko, N. P, Schitova, P.F. Telegin. Book of papers of the International conference SMARTEX-2008, Ivanovo, Ivanovo State Textile Academy, 5 pp. (2008).

Google Scholar

[11] Y.S. Biba, J.H. Ran, F.Y. Telegin. Book of papers Innovations of youth science, Issue 1. Natural and Technical Sciences. S-Petersburg State University of Technology and Design, S-Petersburg, 5 pp (2013) (in Russian).

Google Scholar

[12] C. Daescu, D. Hadaruga. J. Soc. Dyers Colour. 116, No. 2. P. 48-51 (2000).

Google Scholar

[13] W.M.F. Fabian, S. Timofei, L. Kurunczi. Journal of Molecular Structure (Theochem) 340, 73-81 (1995).

Google Scholar

[14] F.Y. Telegin, N.P. Zarubina. News of Higher School. Chemistry and Chemical Technology Vol. 47, No. 8, P. 42-47 (2004) (in Russian).

Google Scholar

[15] N.P. Schitova, F.Y. Telegin. Amphiphilicity of acid dyes and their behavior in dyeing processes. E-Textbook, Ivanovo State University of Chemistry and Technology, 167 pp. (2007). (in Russian).

Google Scholar

[16] S. -Y. Xu, L. Han, Q. -M. Shang, M. -Y. Meng, Z. -C. Song, Y. Xiao. Dyestuffs and Coloration, Vol. 48, No. 3, P. 25-30 (2011) (in Chinese).

Google Scholar

[17] Z. -W. Wu. Rev. of Progress in Coloration, Vol. 28, 32-38 (1998).

Google Scholar

[18] I.A. Shushina, J.H. Ran, F.Y. Telegin. Book of papers Innovations of youth science, S-Petersburg State University of Techcnology and Design, S-Petersburg, P. 48-52 (2012) (in Russian).

Google Scholar

[19] K. Seguchi, M. Iwata, T. Machida and S. Tanaka. J. Soc. Dyers Colour, Vol. 116, No. 1, P. 16-22 (2000).

Google Scholar

[20] V. R. Nam, P.G. Tratnyek. Chemosphere 45, 59-65 (2001).

Google Scholar

[21] A. Zille, P. Ramalho, T. Tzanov, R. Millward, V. Aires, M.H. Cardoso, M.T. Ramalho, G. Gubitz, A. Cavaco-Paulo. Biotechnol Prog 20, 1588-92 (2004).

DOI: 10.1021/bp049963i

Google Scholar

[22] R. Grecu. Dyes and Pigm. 4. P. 221-239 (1983).

Google Scholar

[23] E. Barni. Dyes and Pigm. 5. P. 15-36 (1984).

Google Scholar

[24] G. Hallas. Dyes and Pigm. 33, No. 3. P. 215-228 (1997).

Google Scholar

[25] G. Gong, X. Gao, J. Wang, D. Zhao, H.S. Freeman. Dyes and Pigments 53. P. 109–117 (2002).

Google Scholar