4.7 Article

Synthesis and characterization of ZnO NRs with spray coated GO for enhanced photocatalytic activity

Journal

CERAMICS INTERNATIONAL
Volume 48, Issue 13, Pages 18238-18245

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.ceramint.2022.03.082

Keywords

ZnO nanorods; Photocatalyst; GO spray coating; Hydrothermal; Methylene blue

Funding

  1. Ministry of Education Malaysia [PRGS/2/2020/TK05/UKM/01/1]

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Zinc oxide nanorods coated with graphene oxide were synthesized using the spray coating method in order to enhance photocatalytic activity. Through optimization of the synthesis parameters, the researchers were able to achieve successful coating and improve the photodegradation of organic contaminants. Various analytical techniques were employed to analyze the structural and optical properties of the nanorods, confirming the successful coating of graphene oxide. The experimental results demonstrated that the coating of graphene oxide enhanced the photocatalytic activity of the zinc oxide nanorods.
Zinc oxide nanorods, ZnO NRs, were synthesized on a clean glass and coated with graphene oxide (GO) using spray coating method to enhance the photocatalytic activity in wastewater treatment. The ZnO NRs were syn-thesized using the solution process synthesis that was optimized using Taguchi method. Several synthesis pa-rameters have been optimized and studied to determine the best synthesis parameter to grow ZnO NRs for the photodegradation of organic contaminants. Field emission scanning electron microscopy (FESEM) with EDX, X-ray diffraction (XRD), Raman, ultraviolet visible near-infrared (UV-VIS-NIR), and photoluminescence (PL) spectroscopies were used to investigate the structural and optical properties of the produced nanorods. FESEM images revealed the vertical growth of ZnO NRs as well as layers of GO covering the ZnO NRs' top surface. The Raman study demonstrates the combination peak of GO and ZnO, hence proving the GO layer's successful coating. After the GO coating, decrease in the bandgap of the synthesized photocatalyst was detected by PL and UV-Vis absorption measurements. Under UVC exposure with treatment time of 6 h, the degradation of MB with ZnO NRs/GO photocatalyst reached a degradation percentage of 97.86%, which is greater than the degradation percentage achieved using pristine ZnO NRs, which is 93.28%. The results validated that the coating of GO enhances the photocatalytic activity of the host material, ZnO NRs.

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