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Synthesis, characterization and antibacterial activity of simple ZnO and metal doped ZnO nanoparticles.
Laraib, Saadia; Shah, Asma; Asim, Noreen; Amin, Farhat; Lutfullah, Ghosia; Haider, Jamila.
Affiliation
  • Laraib S; Centre of Biotechnology and Microbiology, University of Peshawar, Peshawar, Pakistan.
  • Shah A; Department of Biotechnology, Women University, Mardan, Pakistan.
  • Asim N; Institute of Biotechnology and Genetic Engineering, University of Agriculture, Peshawar, Pakistan.
  • Amin F; Shaheed Benazir Bhutto Women University, Peshawar, Pakistan.
  • Lutfullah G; Centre of Biotechnology and Microbiology, University of Peshawar, Peshawar, Pakistan.
  • Haider J; Centre of Biotechnology and Microbiology, University of Peshawar, Peshawar, Pakistan.
Pak J Pharm Sci ; 34(5): 1651-1658, 2021 Sep.
Article in En | MEDLINE | ID: mdl-34802998
ABSTRACT
The objective of this study was to synthesize pure ZnO and metal doped ZnO nano-particles, determine its physical, chemical characteristics and antibacterial activity against selected bacterial strains. Pure ZnO was synthesized and metals including Manganese (Mn), Magnesium (Mg), Calcium (Ca), Copper (Cu) and Silver (Ag) were doped with ZnO to produce nanoparticles through co-precipitation method. X-ray diffraction (XRD), scanning electron microscopy (SEM) and Fourier transform infrared (FTIR) spectroscopy were used for detection of synthesized nanoparticles, their crystalline structures, size and other chemical characteristics. An altered version of Kirby Bauer method of disk diffusion was used for determining the antibacterial activity of these nanoparticles. The XRD results showed that the average size of pure ZnO nanoparticles was 55.3 nm. While the size of metal doped ZnO particles were affected by dopant elements. Results of SEM indicated that these nanoparticles were roughly spherical, rod shape and fiber like rod shape with certain degree of aggregation. Antibacterial studies showed that all samples had the potential to inhibit the growth of selected bacterial strains; E. coli, S. choleraesuis, S. typhimurium, S. marcescens, B. subtilus and S. aureus. With 90µg/ml concentration ZnO nanostructures inhibited B.subtilus and silver doped Zinc nanoparticles suppressed growth of S. marcescens. Characterization and antibacterial study indicated the importance of these nanoparticles at industrial and pharmaceutical level.
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Database: MEDLINE Main subject: Bacteria / Zinc Oxide / Metal Nanoparticles / Anti-Bacterial Agents Language: En Year: 2021 Type: Article
Search on Google
Database: MEDLINE Main subject: Bacteria / Zinc Oxide / Metal Nanoparticles / Anti-Bacterial Agents Language: En Year: 2021 Type: Article