Silver nanostructures prepared via novel green approach as an effective platform for biological and environmental applications |
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Authors: | Pooja Rani Bilal Ahmed Jagpreet Singh Jasmeen Kaur Mohit Rawat Navjot Kaur Avtar Singh Matharu Muneera AlKahtani Eman A.H. Alhomaidi Jintae Lee |
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Affiliation: | 1. Department of Nanotechnology, Sri Guru Granth Sahib World University, Fatehgarh Sahib 140406, Punjab, India;2. School of Chemical Engineering, Yeungnam University, Republic of Korea;3. Department of Chemical Engineering, Chandigarh University, Gharuan, Mohali 140413, India;4. University Centre for Research and Development, Chandigarh University, Gharuan, Mohali 140413, India;5. Department of Biotechnology, Sri Guru Granth Sahib World University, Fatehgarh Sahib 140406, Punjab, India;6. Rayat Institute of Pharmacy, Railmajra, SBS Nagar, Punjab 144533, India;7. Green Chemistry Centre of Excellence, Department of Chemistry, University of York, York YO10 5DD, UK;8. Department of Biology, College of Sciences, Princess Nourah bint Abdulrahman University, P.O.Box 84428, Riyadh 11671, Saudi Arabia |
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Abstract: | Silver nanoparticles play a significant role in biomedical sciences due to their unique properties allowing for their use as an effective sensing and remediation platform Herein, the green synthesis of silver nanostructures (Ag NSs), prepared via aqueous extract of waste Brassica oleracea leaves in the presence of silver nitrate solution (10-4 M), is reported. The Ag NSs are fully characterized and their efficacy with respect to 4-nitrophenol reduction, glucose sensing, and microbes is determined. Visually, the color of silver nitrate containing solution altered from colorless to yellowish, then reddish grey, confirming the formation of Ag NSs. HRTEM and SEAD studies revealed the Ag NSs to have different morphologies (triangular, rod-shaped, hexagonal, etc., within a size range of 20–40 nm) with face-centered cubic (fcc) crystal structure. The Ag NSs possess high efficacy for nitrophenol reduction (<11 min and degradation efficiency of 98.2%), glucose sensing (LOD: 5.83 µM), and antimicrobial activity (E. coli and B. subtilis with clearance zones of 18.3 and 14 mm, respectively). Thus, the current study alludes towards the development of a cost-effective, sustainable, and efficient three-in-one platform for biomedical and environmental applications. |
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Keywords: | Silver nanostructures Glucose Antimicrobial Nitrophenol Environmental |
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