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2018 | 18 | 2 |

Tytuł artykułu

Green chemistry for the preparation of silver nanoparticles using mint leaf leaves extracts and evaluation of their antimicrobial potential

Treść / Zawartość

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
The aim of this study was to develop a green synthesis of silver nanoparticles using mint plant leaves extracts. The fresh suspension of plant extracts was yellowish-green in color. However, after the addition of AgNO3 within 15min, the suspension showed a change in color to dark brown after 5 hours of incubation at room temperature. The formation of silver nanoparticles was confirmed using UV-Vis spectral analysis and revealed silver surface plasmon resonance band to be in a range around 200-500 nm. The XRD pattern showed the characteristic bragg peaks of (111), (200) and (220) planes of the face center cubic (FCC) silver nanoparticles AgNPS. Under scanning electron microscope (SEM), silver nanoparticles with a mean particle size of 26 nm and a spherical shape were most frequently observed. In testing, the synthesized AgNPs colloidal solution showed better antibacterial activity against both Gram-positive and Gram-negative bacterial strains. The diameter of the inhibition zones of AgNPs at 50 µg/ml concentration against bacterial strains such as Bacillus subtilis and Escherichia coli were 25 mm and 20 mm, respectively.

Słowa kluczowe

Wydawca

-

Rocznik

Tom

18

Numer

2

Opis fizyczny

p.163-170,fig.,ref.

Twórcy

autor
  • Physics Department, College of Science, Al-Mustansiriyah-University, Baghdad, Iraq
autor
  • Physics Department, College of Science, Al-Mustansiriyah-University, Baghdad, Iraq

Bibliografia

  • [1] Baghizadeh A, Ranjbar SH, Gupta V.K, Asif M, Pourseyedi Sh, Karimi MJ, et al. Green synthesis of silver nanoparticles using seed extract of Calendula officinalis in liquid phase. J Mol Liq 2015; 207: 15963.
  • [2] Song JY, Kim B.S. Rapid biological synthesis of silver nanoparticles using plant leaf extracts. Bioprocess Biosyst Eng 2009; 32: 79-84.
  • [3] El Khoury E, Abiad M, Kassaify Z, Patra D. Green synthesis of curcumin conjugated nanosilver for the applications in nucleic acid sensing and anti-bacterial activity. Colloids Surf B Biointerfaces 2015; 127: 274-80.
  • [4] Mat Zain NM, Stapley AG, Shama G. Green synthesis of silver and copper nanoparticles using Ascorbic acid and Chitosan for antimicrobial applications. Carbohydr Polym 2014; 112: 195-202.
  • [5] Mohanpuria P, Rana NK, Yadav S K. Biosynthesis of nanoparticles: technological concepts and future applications. J Nanopart Res 2009; 10: 507-517.
  • [6] Sathyavathi R, Balamurali K, Venugopal R, Saritha R, Narayana R. Biosynthesis of Silver Nanoparticles Using Coriandrum sativum Leaf Extract and Their Application in Nonlinear Optics. Adv Sci Let 2010; 3: 1-6.
  • [7] Choi O, Deng K.K, Kim, N.J., Ross L, Surampalli R.Y, Hu Z. The inhibitory effects of silver nanoparticles, silver ions, and silver chloride colloids on microbial growth. Water Res 2008; 42 (12): 306674.
  • [8] Rajenran R, Ganesan N, Balu SK, Alagar S, Thandavamorthy P, Thiruvengadam D. Green synthesis, characterization, antimicrobial and cytotoxic effects of silver nanoparticles using Origanum heracleoticum L leaf extract. Int J Pharmacy & Pharmaceutical Sci 2015; 7 (4): 288-93.
  • [9] Ghasemi K, Bolandnazar S, Tabatabaei SJ, Pirdashti H, Arzanlou M, Ebrahimzadeh MA, Fathi H. Antioxidant properties of garlic as affected by selenium and humic acid treatments. New Zealand Journal of Crop and Horticultural Science 2015; 43(3): 173-81
  • [10] Fathi H, Ebrahimzadeh M.A. Antioxidant and free radical scavenging activities of Hypericum perforatum L. (st.John’s wort). Int J Forest Soil and Erosion 2013; 3(2): 68-72.
  • [11] Gardea-Torresdey J.L, Parsons J.G, Gomez E, Peralta-Videa J, Troiani H.E, Santiago P, et al. Formation and growth of Au nanoparticles insidelive Alfalfa plants. Nano Lett 2002; 2 (4): 397-401. 12.
  • [12] Rao C.R.K., Trivedi D.C. Biphasic syntheisi of fatty acids stabilized silver nanoparticles: Role of experimental conditions on particle size. Journal of Matetials Chemistry and Physics 2006; 99 (2-3): 354-60.
  • [13] Ankamwar B, Damle C, Ahmad A, Sastry M. Biosynthesis of gold and silver nanoparticles using Emblica officinalis fruit extract, their phase transfer and transmetallation in an organic solution. Nanosci Nanotechnol 2005; 5 (10): 166571.
  • [14] Safaepour M., Shahverdi A.R., Shahverdi HR, Khorramizadeh MR, Gohari AR. Green Synthesis of Small Silver Nanoparticles Using Geraniol and Its Cytotoxicity against Fibrosarcoma-Wehi 164, Avicenna J Med Biotech 2009; 1(2): 111-5.
  • [15] Dwivedi A.D, Gopal K. Biosynthesis of silver and gold nanoparticles using Chenopodium album leaf extract. Journal of Colloids and Surfaces A 2010; 369 (1): 27-33.
  • [16] Prathna, T.C., Chandrasekaran, N., Raichur, A.M., and Mukherjee, A. Biomimetic synthesis of silver nanoparticles by Citrus limon (lemon) aqueous extract and theoretical prediction of particle size. Journal of Colloids and Surfaces B: Biointerfaces 2011; 82: 1529.
  • [17] Kannat SR, Chander R, Sharma A. Antioxidant potential of mint (Mentha spicata L.) in radiation processed lamb meat. Food Chem 2007; 100 (2): 451 -8.
  • [18] Ebrahimabadi AH, Ebrahimabadi EH, Djafari- Bidgoli Z, JookarKashi F, Mazoochi A, Batooli H. Composition and antioxidant and antimicrobial activity of the essential oil and extracts of Stachys inflate Benth from Iran. Food Chem 2009; 119 (2): 452 - 8
  • [19] S. Ankanna, T. N. V. K. V. Prasad, E. K. Elumalai, and N. Savithramma, Production of biogenic silver nanoparticles using Boswellia ovalifoliolata stem bark, Digest Journal of Nanomaterials and Biostructures, vol. 5, no. 2, pp. 369–372, (2010).
  • [20] P. Shivakumar Singh, G. M. Vidyasagar, Biosynthesis of antibacterial silver nano-particles from Aspergillus terreus. World News of Natural Sciences 16 (2018) 117-124
  • [21] Wisam J. Aziz, Haneen A. Jassim. A novel study of pH influence on Ag nanoparticles size with antibacterial and antifungal activity using green synthesis. World Scientific News 97 (2018) 139-152
  • [22] P. Shivakumar Singh, G. M. Vidyasagar, Biosynthesis of antibacterial silver nano-particles from Aspergillus terreus. World News of Natural Sciences 16 (2018) 117-124
  • [23] Andżelika Byczyńska, Piotr Salachna, Effects of colloidal silver on vase life of cut chrysanthemum. World Scientific News 69 (2017) 239-243

Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

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