Literature DB >> 33934207

Doping of Mg on ZnO Nanorods Demonstrated Improved Photocatalytic Degradation and Antimicrobial Potential with Molecular Docking Analysis.

Muhammad Ikram1, Sidra Aslam2, Ali Haider3, Sadia Naz4, Anwar Ul-Hamid5, Anum Shahzadi6, Mujtaba Ikram7, Junaid Haider4, Syed Ossama Ali Ahmad8, Alvina Rafiq Butt2.   

Abstract

Various concentrations of Mg-doped ZnO nanorods (NRs) were prepared using co-precipitation technique. The objective of this study was to improve the photocatalytic properties of ZnO. The effect of Mg doping on the structure, phase constitution, functional groups presence, optical properties, elemental composition, surface morphology and microstructure of ZnO was evaluated with XRD, FTIR, UV-Vis spectrophotometer, EDS, and HR-TEM, respectively. Optical absorption spectra obtained from the prepared samples showed evidence of blueshift upon doping. XRD results revealed hexagonal wurtzite phase of nanocomposite with a gradual decrease in crystallite size with Mg addition. PL spectroscopy showed trapping efficiency and migration of charge carriers with electron-hole recombination behavior, while HR-TEM estimated interlayer d-spacing. The presence of chemical bonding, vibration modes and functional groups at the interface of ZnO was revealed by FTIR and Raman spectra. In this study, photocatalytic, sonocatalytic and sonophotocatalytic performance of prepared NRs was systematically investigated by degrading a mixture of methylene blue and ciprofloxacin (MBCF). Experimental results suggested that improved degradation performance was shown by Mg-doped ZnO NRs. We believe that the product synthesized in this study will prove to be a beneficial and promising photocatalyst for wastewater treatment. Conclusively, Mg-doped ZnO exhibited substantial (p < 0.05) efficacy against gram-negative (G-ve) as compared to gram-positive (G+ve) bacteria. In silico molecular docking studies of Mg-doped ZnO NRs against DHFR (binding score: - 7.518 kcal/mol), DHPS (binding score: - 6.973 kcal/mol) and FabH (- 6.548 kcal/mol) of E. coli predicted inhibition of given enzymes as possible mechanism behind their bactericidal activity.

Entities:  

Keywords:  Co-precipitation; Nanorods; Photocatalysis; Sonocatalysis; Sonophotocatalysis; ZnO

Year:  2021        PMID: 33934207     DOI: 10.1186/s11671-021-03537-8

Source DB:  PubMed          Journal:  Nanoscale Res Lett        ISSN: 1556-276X            Impact factor:   4.703


  4 in total

1.  Paraclostridium benzoelyticum Bacterium-Mediated Zinc Oxide Nanoparticles and Their In Vivo Multiple Biological Applications.

Authors:  Shah Faisal; Muhammad Rizwan; Riaz Ullah; Amal Alotaibi; Aishma Khattak; Nadia Bibi; Muhammad Idrees
Journal:  Oxid Med Cell Longev       Date:  2022-05-05       Impact factor: 7.310

2.  Enhanced Bactericidal Action of rGO-ZnO Hybrids Prepared by the One-Pot Co-precipitation Approach.

Authors:  Osama Usman; Muhammad Ikram; Namra Abid; Mohsin Saeed; Aneeqa Bashir; Walid Nabgan; Nosheen Mushahid; Mujtaba Ikram
Journal:  ACS Omega       Date:  2022-07-25

3.  MoS2/cellulose-doped ZnO nanorods for catalytic, antibacterial and molecular docking studies.

Authors:  Muhammad Ikram; Muhammad Imran; Shoukat Hayat; Anum Shahzadi; Ali Haider; Sadia Naz; Anwar Ul-Hamid; Walid Nabgan; Iqra Fazal; Salamat Ali
Journal:  Nanoscale Adv       Date:  2021-11-01

4.  Toward efficient dye degradation and the bactericidal behavior of Mo-doped La2O3 nanostructures.

Authors:  Muhammad Ikram; Namra Abid; Ali Haider; Anwar Ul-Hamid; Junaid Haider; Anum Shahzadi; Walid Nabgan; Souraya Goumri-Said; Alvina Rafiq Butt; Mohammed Benali Kanoun
Journal:  Nanoscale Adv       Date:  2022-01-03
  4 in total

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