Dependence of the electrical properties of Cu-doped ZnO nanoparticles decorated by Ag atoms

Author:

Modwi Abueliz1,Taha Kamal K.2,Khezami Lotfi34,Boudina Mohamed5,Khairy Mohamed36,Al-Duaij Omer K.3,Talab Sarra23

Affiliation:

1. Department of Chemistry , College of Science and Arts at Al-Rass , Qassim University , Buraydah , Saudi Arabia

2. Department of Chem. & Indus. Chem. , College of Applied and Industrial Sciences, University of Bahri , Khartoum , Sudan

3. Department of Chemistry , College of Sciences , Imam Mohammad Ibn Saud Islamic University (IMSIU) , P.O. Box 5701 , Riyadh , 11432 , Saudi Arabia

4. Centre de Recherches et des Technologies de l’Energie , Nanomatériaux, Systèmes Électriques , Energies Renzouvelable (LRCRTEn05) , Route Tourist Soliman , Hammam Lif , 2050 , Tunisia

5. Department of Physics , College of Science , University of Bahrain , PO Box 32038 , Zallaq , Kingdom of Bahrain

6. Chemistry Department , Faculty of Science , Benha University , Benha , Egypt

Abstract

Abstract Silver decorated copper doped zinc oxide nanoparticles (Ag@Cu-ZnO) were successfully prepared via sol gel method. X-ray diffraction analysis revealed ZnO wurtzite crystalline structure with the existence of minor peaks attributed to Cu and Ag. The presence of Cu and Ag in addition to ZnO lattice was supplementary verified by EDS data while the shift in the FTIR band confirmed the Cu incorporation within the ZnO host lattice. Both SEM and XRD revealed an increase in particle size with Ag loading. At different frequencies, electrical measurements demonstrated a decrement in the dielectric constant, dielectric loss and AC conductivity with the increment of Ag content. Meanwhile, the Nyquist plots of the impedance measurement showed a single semicircle arc indicating the predominance of grain boundary resistance. This study elucidated the great influence of Ag on Cu-doped ZnO nanoparticles’ structural, dielectric constant and electrical conductivity which make it a promising candidate for catalytic, photocatalytic and adsorption applications.

Publisher

Walter de Gruyter GmbH

Subject

Physical and Theoretical Chemistry

Reference80 articles.

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