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Preparation and Characterization of Chitosan/Silver Nano-composite and its Application on Nile Water as Antibacterial Materials

Published online by Cambridge University Press:  10 February 2020

Heba Elfaig
Affiliation:
Sudan University of science and technology, Sudan.
Wala Elsayed*
Affiliation:
University of Khartoum, Sudan.
Hasabo Ahmed
Affiliation:
Sudan University of science and technology, Sudan.
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Abstract:

The prepared silver/chitosan nanocomposite and chitosan nanoparticles in this study may demonstrate the potential in optimizing the minimum amount required to achieve complete inactivation of various Coliform bacteria in Nile water. Chitosan nanoparticles were prepared based on the ionic gelation of the prepared chitosan and silver nanoparticles were reduced by Solenostemma Argel extract. Finally, chitosan silver-loaded nanoparticles were prepared by dispersing silver nanoparticles onto the chitosan nanoparticles. The SEM images exhibited a diameter range of 10 nm–30 nm for both of the fabricated silver nanoparticles and chitosan nanoparticles. The UV-Vis analysis confirmed the formation of Ag nanoparticles by the appearance of the characteristic peak at 410 nm. The antibacterial activity of chitosan nanoparticles and silver-loaded nanoparticles was evaluated against the Coliform bacteria. Results show an improvement in the inhibition of the growth of various bacteria tested when silver nanoparticles were introduced which was (0.03g/100ml). Consequently, chitosan silver-loaded nanoparticles could be recommended as an efficient antibacterial material for water disinfection.

Type
Articles
Copyright
Copyright © Materials Research Society 2020

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References

Divya, K. and Jisha, M., Chitosan nanoparticles preparation and applications . Environmental chemistry letters, 2018. 16(1): p. 101-112.CrossRefGoogle Scholar
Agarwal, M., et al., Preparation of chitosan nanoparticles and their in-vitro characterization . International journal of life science scientific research, 2018. 4(2): p. 1713-1720.CrossRefGoogle Scholar
Vimala, K., et al., Fabrication of porous chitosan films impregnated with silver nanoparticles: a facile approach for superior antibacterial application . Colloids and Surfaces B: Biointerfaces, 2010. 76(1): p. 248-258.CrossRefGoogle ScholarPubMed
Li, Q., et al., Antimicrobial nanomaterials for water disinfection and microbial control: potential applications and implications . Water research, 2008. 42(18): p. 4591-4602.CrossRefGoogle ScholarPubMed
Motshekga, S.C., et al., Preparation and antibacterial activity of chitosan-based nanocomposites containing bentonite-supported silver and zinc oxide nanoparticles for water disinfection . Applied Clay Science, 2015. 114: p. 330-339.CrossRefGoogle Scholar
Vimala, K., et al., Fabrication of curcumin encapsulated chitosan-PVA silver nanocomposite films for improved antimicrobial activity . Journal of Biomaterials and Nanobiotechnology, 2011. 2(01): p. 55.CrossRefGoogle Scholar
Qi, L., et al., Preparation and antibacterial activity of chitosan nanoparticles . Carbohydrate Research, 2004. 339(16): p. 2693-2700.CrossRefGoogle ScholarPubMed
Awad, M.A.G., et al., Method of treating diabetic wounds using biosynthesized nanoparticles, 2018, Google Patents.Google Scholar
Bartram, J. and Ballance, R., Water quality monitoring: a practical guide to the design and implementation of freshwater quality studies and monitoring programmes 1996: CRC Press.CrossRefGoogle Scholar
Pereira, F.S., et al., Thermal and morphological study of chitosan metal complexes . Journal of Thermal Analysis and Calorimetry, 2017. 129(1): p. 291-301.CrossRefGoogle Scholar
Huang, H., Yuan, Q., and Yang, X., Morphology study of gold–chitosan nanocomposites . Journal of colloid and interface science, 2005. 282(1): p. 26-31.CrossRefGoogle ScholarPubMed
Wang, L.-S., et al., Synthesis and anti-fungal effect of silver nanoparticles–chitosan composite particles . International journal of nanomedicine, 2015. 10: p. 2685-96.Google ScholarPubMed
Lu, L.C., Wang, C.I., and Sye, W.F., Applications of chitosan beads and porous crab shell powder for the removal of 17 organochlorine pesticides (OCPs) in water solution . Carbohydrate Polymers, 2011. 83(4): p. 1984-1989.CrossRefGoogle Scholar
Xing, R., et al., Superparamagnetic magnetite nanocrystal clusters as potential magnetic carriers for the delivery of platinum anticancer drugs . Journal of Materials Chemistry, 2011. 21(30): p. 11142-11149.CrossRefGoogle Scholar
Oldenburg, S.J., Silver nanoparticles: properties and applications . Sigma-Aldrich Co., nd, 2014.Google Scholar
Vaezifar, S., et al., Effects of Some Parameters on Particle Size Distribution of Chitosan Nanoparticles Prepared by Ionic Gelation Method . Journal of Cluster Science, 2013. 24.CrossRefGoogle Scholar