Enhancing antimicrobial and photocatalyst properties of Mg-doped ZnO nanotubes via novel laser-assisted chemical bath synthesis

Samer H. Zyoud(Universiti Sains Malaysia), Omar E Hegazi(Ajman University), Samer O Alalalmeh(Ajman University), Che Azurahanim Che Abdullah(Universiti Putra Malaysia), Akram Ashames(Ajman University), Nageeb Hassan(Ajman University), I.S. Yahia(Ain Shams University), Ahed Zyoud(An-Najah National University), Malek G. Daher(Islamic University of Gaza), Moyad Shahwan(Ajman University), Samir Haj Bloukh(Ajman University), H. Y. Zahran(Ain Shams University), Naser Qamhieh(United Arab Emirates University), Mohamed Nasor(Ajman University), Ammar Abdulrahman Jairoun(Dubai Health Authority)
Journal of Saudi Chemical Society
October 17, 2023
Cited by 19Open Access
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Abstract

Laser-Assisted Chemical Bath Synthesis (LACBS) was used to fabricate pure and magnesium-doped zinc oxide nanoparticles. Analysis of these nanoparticles' structural, morphological, optical, and antimicrobial characteristics was conducted. This analysis spanned across varying concentrations of magnesium-doped zinc oxide from 1% to 3%. XRD confirmed the nanoparticles' crystalline nature, revealing the hexagonal wurtzite phase. SEM analysis showcased their nanometric domain existence and hexagonal crystalline morphology, transforming from nanorods to nanotubes. Optical analysis showed band gap energy decrease from 3.27 to 2.85 eV correlating with the magnesium doping concentration increase. Optical absorption displayed a distinctive redshift for the nanoparticles as magnesium concentration increased from 1% to 3%. Photocatalytic assessments highlighted the superior degradation ability of 3% Mg-doped nanoparticles, showing a 98.04% degradation rate against methylene orange dye under blue light exposure. Antimicrobial activity tests against various pathogens showed that Mg ions' incorporation significantly enhanced antimicrobial performance, demonstrating the effectiveness of the LACBS method.


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