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March 4, 2026Journal of the Turkish Chemical Society Section A Chemistry0 citationsOpen Access

Structural, Microstructural, and Dielectric Insights into Eu3+-Doped and Eu3+, B3+ Co-Doped Sr2GdTaO6 Double Perovskite Ceramics

MİMustafa İlhanLGLütfiye Feray GüleryüzMKMehmet İsmail Katı

Key Points

  • The aim is to explore the structural and dielectric characteristics of Eu3+-doped and co-doped Sr2GdTaO6 ceramics.
  • Conducted X-ray diffraction (XRD) analysis to determine crystal structure.
  • Applied scanning electron microscopy (SEM) for microstructural evaluation.
  • Measured dielectric properties across different frequencies and compositions.
  • Analyzed crystallite sizes using Scherrer and Williamson–Hall methods.
  • All samples showed monoclinic P2₁/n structure, maintaining single-phase up to specified doping levels.
  • Dielectric constant varied, showing a decline for increasing Eu3+ content but an increase with moderate B3+ addition.
  • Excess B3+ led to reduced dielectric performance due to strain and secondary phase formation.
  • Grain size increased with B3+ addition, peaking at ~25 µm before showing heterogeneity at higher concentrations.

Abstract

The structural, microstructural, and dielectric properties of Eu3+-doped and Eu3+, B3+ co-doped Sr2GdTaO6 double perovskite ceramics were systematically investigated. X-ray diffraction (XRD) analysis confirmed that all samples crystallize in the monoclinic P2₁/n space group with long-range B/B′ ordering, remaining single-phase up to 20 mol% Eu3+ and 70 mol% B3+. The peak-shift analysis revealed a slight shift toward lower angles, attributed to the substitution of Gd3+ by Eu3+ and the indirect structural perturbations induced by boron incorporation through charge compensation and microstrain effects. Crystallite sizes, derived from Scherrer and Williamson–Hall analyses, were found in the 30–45 nm range, with microstrain and defect densities increasing under Eu3+ doping but significantly reduced at moderate B3+ contents, consistent with the fluxing effect of boron. Scanning electron microscopy (SEM) revealed dense, terraced grains of 4–13 µm in the Eu3+ series, while boron addition promoted grain growth up to ~25 µm and faceted morphologies at intermediate concentrations. Excessive boron, however, yielded heterogeneous microstructures and secondary phases, aligning with XRD observations. Dielectric measurements demonstrated frequency-dependent behavior consistent with the Maxwell–Wagner model. For the Eu3+ series, the dielectric constant decreased from 32.4 to 21.8 at 20 Hz with increasing Eu3+, reflecting reduced crystallinity and enhanced microstrain. In contrast, moderate boron addition significantly enhanced the dielectric constant (up to 45.7 at 20 Hz) and suppressed dielectric loss, owing to improved densification, larger grains, and reduced oxygen-vacancy-related conduction. At high boron contents (70 and 100 mol%), both ε′ and tan δ degraded, attributed to strain accumulation and secondary phase formation. These results establish clear correlations between defect chemistry, microstructure, and dielectric response in Sr2GdTaO6 ceramics, highlighting the potential of controlled Eu3+ substitution and optimized boron co-doping for tailoring multifunctional dielectric materials.

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Cite This Study

İlhan et al. (2026) studied this question.

synapsesocial.com/papers/69a7ccc3d48f933b5eed88fbhttps://doi.org/10.18596/jotcsa.1790637
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