Exploring Enhanced Structural and Dielectric Properties in Ag-Doped Sr(NiNb)0.5O3 Perovskite Ceramic for Advanced Energy Storage

Author:

Tayari Faouzia1,Benamara Majdi12ORCID,Lal Madan34ORCID,Essid Manel5,Thakur Priyanka3,Kumar Deepak4,Teixeira S. Soreto1ORCID,Graça M. P. F.1ORCID,Nassar Kais Iben16ORCID

Affiliation:

1. i3N-Physics Department, University of Aveiro, 3810-193 Aveiro, Portugal

2. Laboratory for Building Energy Materials and Components, Swiss Federal Laboratories for Materials Science and Technology (Empa), Überlandstrasse 129, 8600 Dübendorf, Switzerland

3. Department of Physics, Akal College of Basic Sciences, Eternal University, Sirmour HP-173101, India

4. Department Physics, Graphic Era (Deemed to be University), Dehradun UK-248002, India

5. Chemistry Department, College of Science, King Khaled University (KKU), P.O. Box 9004, Abha 61413, Saudi Arabia

6. CICECO—Aveiro Institute of Materials, Department of Chemistry, University of Aveiro, Campus Universitário de Santiago, 3810-193 Aveiro, Portugal

Abstract

The ceramic Sr(NiNb)0.5O3, incorporating silver doping in the A site, was synthesized using a sol–gel route and subjected to comprehensive analysis through various experimental techniques. X-ray diffraction data analysis indicates a rhombohedral crystal structure. Scanning electron microscopy (SEM) examination reveals densely packed grains with minimal surface porosity. A thorough investigation of electrical properties, encompassing dielectric constant, loss tangent, electrical impedance, modulus, conductivity, etc., was conducted across a wide frequency range (103–106 Hz) and temperature range (260–340 K). This analysis provided valuable insights into structure–property relationships and conduction mechanisms. The discussion highlights the significance of interface effects, space charge polarization, and Maxwell–Wagner dielectric relaxation in achieving the material’s high dielectric constant at low frequencies and elevated temperatures. Examination of temperature dependence through Nyquist plots elucidates the contributions of grain behavior to the material’s resistive and capacitive properties. The dielectric permittivity, dissipation of energy, and electrical characteristics like impedance, modulus and conductivity are notably influenced by the frequency of the applied electric field and temperature. Overall, the material exhibits promising potential for industrial applications such as energy storage, given its intriguing properties.

Funder

King Khalid University

COMPETE 2020 Program

FCT/MEC

FCT—Fundação para a Ciência e a Tecnologia, I.P.

Publisher

MDPI AG

Reference51 articles.

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2. Lines, M.E., and Glass, A.M. (1997). Principles and Applications of Ferroelectrics and Related Materials, Oxford University Press.

3. Synchrotron x-ray diffraction study of Ba4.5Nd9Ti18O54 microwave dielectric ceramics at 10–295 K;Tang;J. Mater. Res.,2022

4. Effect of structural changes in complex perovskites on the temperature coefficient of the relative permittivity;Colla;Appl. Phys.,1993

5. Recent progress of perovskite-based electrolyte materials for solid oxide fuel cells and performance optimizing strategies for energy storage applications;Hanif;Mater. Res. Bull.,2022

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