Development of biogenic mediated Ag/ZrO2 nanocomposite photocatalyst for degradation of toxic dyes in textile effluents

Author:

Vanasundari Karuppaiya1,Paramasivam Sivaprakash2,Viji Arangarajan3,Husain Fohad Mabood4,Sankaran Esakki Muthu5,Kim Ikhyun2

Affiliation:

1. Department of Physics, Centers for Research , Arignar Anna Government Arts College (Affiliated to Bharathidasan University) , Tiruchirappalli 621211 , Musiri , India

2. Department of Mechanical Engineering , 26722 Keimyung University , Daegu 42601 , South Korea

3. Kongunadu College of Engineering and Technology , Thottiyam , Tiruchirappalli 621215 , Tamil Nadu , India

4. Department of Food Science and Nutrition , King Saud University , Riyadh 11451 , Kingdom of Saudi Arabia

5. Department of Physics, Centre for Material Science , Karpagam Academy of Higher Education , Coimbatore 641021 , India

Abstract

Abstract Zirconium oxide (ZrO2) nanoparticles doped with silver (Ag) were synthesized utilizing Vitis vinifera leaf extract, offering a non-toxic and cost-effective production method. These nanoparticles were evaluated for their photocatalytic activity against both cationic (CR, EY, MO) and anionic (CV, MG, MB) dyes, alongside electrochemical impedance spectroscopy studies. The incorporation of silver into ZrO2 aimed to enhance the photocatalytic efficiency, particularly under visible light activation, for the significant removal of toxic contaminants. Analysis employing UV-vis spectroscopy and a pseudo-first-order kinetics model revealed that sunlight exposure notably improved dye degradation. Various techniques were employed to assess the physicochemical characteristics, indicating the reduction process in the chemical reaction and confirming nanoparticle formation through chemical bonding, as evidenced by peaks in the IR spectrum ranging from 450 to 660 cm−1. Furthermore, analysis of the UV–vis spectrum revealed bandgaps of 5.1 eV and 4.56 eV, confirming tetragonal and cubic crystal structures with crystalline sizes of approximately 15.7 nm and 17 nm for ZrO2 and Ag–ZrO2 nanoparticles, respectively. Electrochemical impedance spectra demonstrated that the addition of Ag to Zr notably improved charge transfer and electron separation processes.

Publisher

Walter de Gruyter GmbH

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