Ferroelectric and Piezoelectric MaterialsMicrowave Dielectric Ceramics SynthesisDielectric properties of ceramics

Z. Lazarevic, M. Ćurčić, M. Rabasović, I. Stajčić, B. Simović, D. Šević, Vesna Paunović

2026.1.1SCIENCE OF SINTERING

DOI: 10.2298/sos260406003l

Abstract

In this work, erbium oxide (Er₂O₃), a rare-earth oxide, was employed as a dopant in barium titanate (BaTiO₃) ceramics. The BaTiO₃-based materials were prepared using a conventional solid-state reaction technique. Dopant levels ranging from 0.01 to 1.0 wt.% were incorporated into the ceramic matrix. The prepared samples were sintered at 1380°C for a duration of four hours. The structural, morphological, and optical characteristics of the resulting ceramics were examined using multiple methods, including X-ray diffraction (XRD), scanning electron microscopy (SEM), atomic force microscopy (AFM), Raman spectroscopy, Fourier-transform infrared spectroscopy (FTIR), and photoluminescence (PL) analysis. For samples with a low Er₂O₃ concentration (0.01 wt.%), grain sizes were found to range between 10 μm and 30 μm. In contrast, increasing the dopant content to 1.0 wt.% inhibited abnormal grain growth, leading to a more refined microstructure with grain sizes in the range of 2 μm to 10 μm. Dielectric properties, including permittivity and loss, were measured as functions of both frequency and temperature in order to establish a relationship between microstructural evolution and dielectric behavior. The amphoteric nature of rare-earth ions was found to enhance dielectric permittivity while reducing dielectric losses compared to undoped BaTiO₃. Furthermore, the effect of dopant concentration on the temperature dependence of the dielectric constant was also evaluated.

Citation format

LAZAREVIC, Z., et al. Effects of rare earth ion doping on the structural, optical and visible photoluminescent properties of batio₃ perovskite: Spectroscopic-dielectric investigation. SCIENCE OF SINTERING, 2026: 3.