Published January 1, 2025 | Version v1
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Synthesis, characterization, and thermoelectric properties of Ca2.5Ag0.3Lu0.2Co4O9 materials by sol-gel processing for thermoelectric generators

  • 1. Karabuk Univ, Fac Engn, Dept Mech Engn, Demir Celik Campus, TR-78050 Karabuk, Turkiye
  • 2. Sakarya Univ Appl Sci, Fac Technol, Dept Mech Engn, Esentepe Campus Serdivan, TR-54187 Sakarya, Turkiye
  • 3. Sakarya Univ Appl Sci, Fac Technol, Dept Met & Mat Engn, Esentepe Campus Serdivan, TR-54187 Sakarya, Turkiye
  • 4. Necmettin Erbakan Univ, Fac Engn, Dept Mech Engn, TR-42090 Konya, Turkiye

Description

Layered cobaltite-based oxides are promising p-type thermoelectric materials due to their high thermal stability, oxidation resistance, and decent Seebeck coefficients at elevated temperatures. In this work, Ca2.5Ag0.3Lu0.2-Co4O9 ceramics were successfully synthesized via a sol-gel method and investigated for their structural, microstructural, and thermoelectric properties. Ca2.5Ag0.3Lu0.2Co4O9 ceramics synthesized via the sol-gel method demonstrated a stable, homogeneous solution (pH 1.32, turbidity 10.17 ntu). After thermal treatment, the powders formed a pure layered monoclinic Ca3Co4O9 phase with minor Co3O4, preferred (00l) texture, and dopant-induced lattice strain. Comprehensive characterization, such as TG-DTA, FTIR, XRD, XPS, SEM, and TM, confirmed stepwise removal of organics, nitrates, and water, successful incorporation of Ag+ and Lu3+, mixed Co3+/Co4+ valence states, oxygen vacancies, and well-bonded M-O frameworks. SEM revealed hierarchical microstructures with micron-sized agglomerates composed of nanoscale platelets (30-400 nm) forming stacked, anisotropic layers, promoting efficient charge transport and phonon scattering. Thermoelectric measurements showed p-type behavior with the Seebeck coefficient increasing from 233.17 mu V/K to 272.70 mu V/K, and electrical resistivity decreasing from 14.96 to 14.31 mS2 cm. The power factor rising from 0.36 to 0.52 mW/mK2 at 800 degrees C confirmed that the material's structural, microstructural, and electronic features are well-optimized for intermediate-to high-temperature thermoelectric applications.

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