Bimetallic CuO−ZnO Hybrid Nanocomposite Materials for Efficient Remediation of Environmental Pollutants

Author:

Rudresha K.12,Zahir Hussain A.2,Ravikumar C. R.3,Anil Kumar M. R.3,Naveen Kumar A.4,Manjunatha A. S.5,Nagaswarupa H. P.6,Amulya Shilpa3,Ananda Murthy H. C.78,Mallandrich Miret Mireia9,Kalam Azad Abul10,Madkhali O.11,Aljabri Mahmood D.12,Marwani Hadi M.13,Rahman Mohammed M.1314ORCID

Affiliation:

1. Department of Chemistry Jyothi Institute of Technology VTU Bangalore 560082 Karnataka India

2. Research Centre, Department of Chemistry Jamal Mohamed College (Affiliated to Bharathidasan University) Tiruchirappalli 620020 Tamilnadu India

3. Research Centre Department ofScience East West Institute of Technology Bangalore Karnataka 560091 India E-mil

4. Research Centre Department of Physics South East Asian College of Engineering and Technology VTU Bangalore Karnataka 560049 India

5. Department of Chemistry Don Bosco Institute of Technology VTU Bengaluru 560 074 India

6. Department of Studies in Chemistry Davanagere University Davanagere 577007 Karnataka India

7. Department of Applied Chemistry School of Applied Natural Science Adama Science and Technology University P.O. Box 1888 Adama Ethiopia

8. Department of Prosthodontics Saveetha Dental College & Hospital, Saveetha Institute of Medical and technical science (SIMAT) Saveetha University Chennai 600077 Tamil Nadu India

9. Department of Pharmacy Pharmaceutical Technology and Physical-Chemistry Faculty of Pharmacy and Food Sciences University of Barcelona 08028 Barcelona Spain

10. Faculty of Pharmacy University College MAIWP International 68100 Batu Caves, Kuala Lumpur Malaysia.

11. Department of Physics College of Science Jazan University P.O. Box 114 Jazan 45142 Kingdom of Saudi Arabia

12. Department of Chemistry University College in Al-Jamoum Umm Al-Qura University Makkah 21955 Saudi Arabia

13. Department of Chemistry Faculty of Science King Abdulaziz University Jeddah 21589 P.O.Box 80203 Saudi Arabia

14. Center of Excellence for Advanced Materials Research (CEAMR) King Abdulaziz University Jeddah 21589 P.O.Box 80203 Saudi Arabia

Abstract

AbstractPure CuO and 2‐Dimentional CuO−ZnO nanocomposites (NCs) were effectively prepared by an ultrasound‐assisted probe sonication route for different ratios of CuO and ZnO, and the multifunctional properties were investigated by the application of the advanced methods. XRD (X‐ray diffraction) patterns revealed a crystallite size (D) range of 25 to 31 nm for pure CuO and CuO−ZnO NCs. According to calculations, the energy band gap value (Eg) for the NCs is between 2.15 and 2.48 eV. Under UV light irradiation, the photocatalytic degradation of pure CuO and CuO−ZnO NCs on Direct Green (DG) and Fast Blue (FB) dyes was assessed. 60 mg of the catalyst was added to 20 ppm solutions of DG and FB dye. The stock solution of the dyes was prepared 10, 15, 20 and 25 ppm of 250 ml dye solution. Electrochemical analysis using cyclic voltammetry revealed improved redox potential output in the electrode crafted with graphite powder in 0.1 N HCl electrolyte solution. These NCs were used because of their capacity to detect an extremely dangerous chemical like arsenic. The constructed electrode‘s lowest limit of detection was determined to be 110–3 mol/L. In general, vertical linearity was seen in all of the prepared nano‐electrodes, especially above 150 ohms with real axis for pure CuO but beyond 100 ohms for doped electrodes. Based on our study, we conclude that the CuO and ZnO NCs, containing 10 % of ZnO, were the most effective photocatalyst for DG and FB dyes and electrochemical sensor for Arsenic.

Publisher

Wiley

Subject

General Chemistry

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