Green Synthesis of Zn(OH)2/ZnO-Based Bionanocomposite using Pomegranate Peels and Its Application in the Degradation of Bacterial Biofilm

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dc.contributor.author Haque, Shafiul
dc.contributor.author Faidah, Hani
dc.contributor.author Ashgar, Sami S.
dc.contributor.author Abujamel, Turki S.
dc.contributor.author Mokhtar, Jawahir A.
dc.contributor.author Almuhayawi, Mohammed Saad
dc.contributor.author Harakeh, Steve
dc.contributor.author Singh, Rajeev
dc.contributor.author Srivastava, Neha
dc.contributor.author Gupta, Vijai Kumar
dc.date.accessioned 2023-04-18T11:13:14Z
dc.date.available 2023-04-18T11:13:14Z
dc.date.issued 2022-10
dc.identifier.issn 20794991
dc.identifier.uri http://localhost:8080/xmlui/handle/123456789/2094
dc.description This paper is submitted by the author of IIT (BHU), Varanasi en_US
dc.description.abstract The ability and potency of bacterial species to form biofilms, which show antibiotic resistance thereby avoiding antibiotic surfaces, is a major cause of prolonged infections. Various advanced approaches have been employed to prevent or damage bacterial biofilms, formed by a variety of bacterial strains, to help prevent the associated infectious disease. In this context, zinc-based nanostructures have been recognized as a potential antibiotic agent against a broad spectrum of bacterial communities. As a result, a sustainable and green synthesis method was adapted in the present study to synthesize a Zn(OH)2/ZnO-based bionanocomposite, in which aqueous extracts of waste pomegranate peels (Punica granatum) were employed as a natural bioreducing agent to prepare the bionanocomposite at room temperature. Furthermore, FT-IR, XRD, DLS, UV-Visible, PL spectroscopy, FE-SEM, and TEM were used to characterize the green route synthesized a Zn(OH)2/ZnO bionanocomposite. The average crystallite size was determined using the Scherrer relation to be 38 nm, and the DLS results indicated that the Zn(OH)2/ZnO bionanocomposite had a hydrodynamic size of 170 nm. On the other hand, optical properties investigated through UV-Vis and PL spectroscopy explored the energy bandgap between 2.80 and 4.46 eV, corresponding to the three absorption edges, and it covered the blue spectrum when the sample was excited at 370 nm. Furthermore, the impact of this green route synthesized a Zn(OH)2/ZnO bionanocomposite on the biofilm degradation efficiency of the pathogenic bacterial strain Bacillus subtilis PF_1 using the Congored method was investigated. The Congored assay clearly explored the biofilm degradation efficiency in the presence of a 50 mg/mL and 75 mg/mL concentration of the Zn(OH)2/ZnO bionanocomposite against the bacterial strain Bacillus subtilis PF_1 grown for 24 h. This study can be further applied to the preparation of bionanocomposites following a low-cost green synthesis approach, and thus prepared nanostructures can be exploited as advanced antimicrobial agents, which could be of great interest to prevent various infectious diseases. en_US
dc.description.sponsorship This research work was funded by the Institutional Fund Projects under grant no. (IFPDP102-22). Therefore, authors gratefully acknowledge technical and financial support from Ministry of Education and King Abdulaziz University, Deanship of Scientific Research, Jeddah, Saudi Arabia. en_US
dc.language.iso en en_US
dc.publisher MDPI en_US
dc.relation.ispartofseries Nanomaterials;Article number 3458
dc.subject bacterial biofilm degradation en_US
dc.subject food waste en_US
dc.subject green synthesis en_US
dc.subject nanomaterials en_US
dc.subject zin oxide-based nanostructure en_US
dc.title Green Synthesis of Zn(OH)2/ZnO-Based Bionanocomposite using Pomegranate Peels and Its Application in the Degradation of Bacterial Biofilm en_US
dc.type Article en_US


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