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Khalil, H. (2022). Simultaneous pigment printing and antibacterial functionalization of wool and wool/polyester blend fabrics. International Design Journal, 12(4), 151-155. doi: 10.21608/idj.2022.135113.1045
Heba Mohamed Khalil. "Simultaneous pigment printing and antibacterial functionalization of wool and wool/polyester blend fabrics". International Design Journal, 12, 4, 2022, 151-155. doi: 10.21608/idj.2022.135113.1045
Khalil, H. (2022). 'Simultaneous pigment printing and antibacterial functionalization of wool and wool/polyester blend fabrics', International Design Journal, 12(4), pp. 151-155. doi: 10.21608/idj.2022.135113.1045
Khalil, H. Simultaneous pigment printing and antibacterial functionalization of wool and wool/polyester blend fabrics. International Design Journal, 2022; 12(4): 151-155. doi: 10.21608/idj.2022.135113.1045

Simultaneous pigment printing and antibacterial functionalization of wool and wool/polyester blend fabrics

Article 13, Volume 12, Issue 4 - Serial Number 46, July and August 2022, Page 151-155  XML PDF (957.75 K)
Document Type: Original Article
DOI: 10.21608/idj.2022.135113.1045
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Author
Heba Mohamed Khalil email
Applied arts.Helwan Univerisity
Abstract
Background and problem
In recent years, there has been a growing need to develop cost-effective, value added, eco-safe, functional and durable textile products. Special focus has been given to the implementation of emerging technologies such as bio-, nano- and/or plasma technologies in textile wet processes to cope with the ever-increasing environmental, health and quality concerns. Taking these facts into account, much of our R&D efforts have been focused on developing functionalized textile products with desirable, durable functional and improved coloration properties using proper functional finishing and/or printing formulations and a facile single–stage process.
The main task and results
we report the technical feasibility of upgrading both the functional properties and pigment coloration of wool and wool/polyester blended fabrics in one-step via incorporation of certain functional additives namely PEG-600, and triclosan derivative (Ruco® BAC MED) into the solvent-free formulations, followed by screen printing and microwave-fixation to obtain antibacterial functionalized wool and wool/polyester pigment prints.
Results obtained signify that:
1- The improvement in the depth of the obtained pigment prints along with a remarkable enhancement in their antibacterial activity through incorporation of PEG-600 (20g/kg) and triclosan derivatives (Ruco® BAC MED) (20g/kg) into free-solvent pigment pastes followed by flat screen printing and microwave fixation.
2- The imparted functional properties, i.e. antibacterial, K/S and fastness, are governed by the nature of the reactive additives, the type of substrate and the kind of pigment colorant.
3- The imparted antibacterial activity of the loaded bio-active agents follows the decreasing order: G+ve (S.aureus) > G-ve (E.coli)
Keywords
Pigment printing; antibacterial finishing; wool and wool/polyester blended textiles
References
  1.  Khalil, H. M, (2017). Antibacterial Functionalization and Pigment Coloration of Wool-containing fabrics in One Step International Design Journal, 7 (4), 71-75.
  2. Ibrahim, N. A., Eid, B. M., Khalil. H. M. (2015). Cellulosic/Wool Pigment Prints with Remarkable Antibacterial Functionalities. Carbohydrate Polymers, 115, 559-567.
  3. Ramachandran, T., Rajendrakumar, K., and Rajendran, R. (2004). Antimicrobial Textiles- an Overview, Institution of Engineerings (India) Journal of Textile. 84 (2), 42-47.
  4. M. H. El-Rafie, A. A. Mohamed, Th. I. Shaheen, A. Hebeish. (2010). Antimicrobial effect of silver nanoparticles produced by fungal process on cotton fabrics, Carbohydrate Polymers, 80, 779–782.
  5. Gao, Y. and Cranston, R. (2008). Recent Advances in Antimicrobial Treatments of Textiles, Textile Research Journal, 78 (1), 60–72.
  6. Bajaj, P. (2002). Finishing of Textile Materials, Journal of Applied Polymer Science, 83 (3), 631-659.
  7. Saravanan, D. (2005). Antimicrobial Finishing of Textile Materials, The Indian Textile Journal, 116 (1), 41-46.
  8. Dastjerdi, R. & Montazer, M.  (2010). A review on The Application of Inorganic Nano-Stuctured Materials in The Modification of Textiles: Focus on Anti-microbial Properties, Colloids and surfaces B: Biointerfaces, 79 (1), 5-18.
  9.  I. Makarovsky, I., Boguslavsky, Y., Alesker, M., Lellouche, J., Banin, E. & J. P. Lellouche, J. P. (2011). Novel Triclosan-bound Hybrid-silica Nanoparticles and Their Enhanced Antimicrobial Properties, Advanced Functional Material, 21 (22), 4295-4304.
  10. Ibrahim, N. A., Eid, B. M., & El-Zairy, E. R. (2011). Antibacterial Functionalization of Reactive-Cellulosic Prints via Inclusion of Bio Active Neem Oil/β-CD Complex, Carbohydrate Polymers, 86 (3), 1313-1319.
  11. Ibrahim, N. A., Eid, B. M., Elmaaty, T. M. & El-Aziz, E. A. (2013). A smart approach to add antibacterial functionality to cellulosic pigment prints, Carbohydrate polymers, 94, 612-618.
  12. Judd, D. & Wyszeck, G. (1975). Color in business science and industry, 3rd edition, John Wiley & Sons. New York.
  13. Gupta, G. & Bhaumik, S. (2007). Antimicrobial treatment for Textiles, Review article, Indian Journal of Fibre and Textile Research, 32, 254-263.
  14. Vigo, T. L. & Leonas, K.K. (1999). Antimicrobial activity of fibres containing polyethylene glycol, Textile Chemist and Colorist & American Dyestuff Reporter, 1(9), 42-46.
  15. Ibrahim, N. A., Eid, B. M., Elmaaty, T. M. & El-Aziz, E. A., (2013). A smart approach to add antibacterial functionality to cellulosic pigment prints, Carbohydrate polymers, 94, 612-618.
  16. Ibrahim, N. A., Khalil, H. M., El-Zairy, E. M. R. & Abdalla, W. A. (2013). Smart options for simultaneous functionalization and pigment coloration of cellulosic/wool blends, Carbohydrate polymers, 96, 200-210.
  17. Cardamone, J. M., Marmer, W. N., Blanchard, E. J., Lambert, A. H. & Bulan- Brady, J. (1996). Pretreatment of wool/cotton for union dyeing, part 1: resins plus choline chloride, Textile Chemist and Colorist, 28 (11), 19-23.
  18. Lam, Y. L., Kan, C. W. & Yuen, C. W. M. (2012). Developments in functional finishing of cotton fibres – wrinkle-resistant, flame-retardant and antimicrobial treatments, Textile Progress, 44, 172-249.
  19. Orhan, M., Kut, D. & Gunesoglu, C. (2008). Improving the antibacterial activity of cotton fabrics finished with triclosan by the use of 1,2,3,4-butanetetracarboxylic acid and citric acid, Journal of Applied Polymer Science, 111, 1344 - 1352.
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