<p>Ca<sub>3</sub>Co<sub>4</sub>O<sub>9</sub> (CCO349) is a promising p-type thermoelectric ceramic oxide with high thermoelectric power factor <i>PF</i>, and reasonable thermoelectric figure-of-merit <i>zT</i>. CCO349 bulk ceramics were prepared from precursor powders with average particle sizes <i>d</i><sub>50</sub> ranging from about 10&#xa0;µm to 0.5&#xa0;µm, and conventional sintering at 920&#xa0;°C. Remarkably, ceramics made from powders with optimum <i>d</i><sub>50</sub> of 1&#xa0;µm exhibit enhanced electrical conductivity <i>σ</i><sub>⊥</sub> and power factor <i>PF</i><sub>⊥</sub> of 11,100 S/m and 340&#xa0;µW/m·K<sup>2</sup> at 800&#xa0;°C, respectively. The ceramics exhibit anisotropic microstructures with Lotgering factors larger than 0.9, and anisotropic thermoelectric properties: the electrical conductivity <i>σ</i><sub>⊥</sub> and power factor <i>PF</i><sub>⊥</sub> are higher by 90% and 110% as compared to <i>σ</i><sub>‖</sub> and <i>PF</i><sub>‖</sub> at 800&#xa0;°C, respectively, and the <i>zT</i><sub>⊥</sub> reaches nearly 0.16 at 800&#xa0;°C. Moreover, a transverse thermoelectric device was fabricated based on alternating layers of CCO349 and silver with a power output of 5 mW at Δ<i>T</i> = 190&#xa0;K.</p> Graphical abstract <p></p>

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Boosting the thermoelectric performance of Ca3Co4O9 ceramics through optimized precursor powder particle size

  • Ahmed A. S. Ibrahim,
  • Jörg Töpfer

摘要

Ca3Co4O9 (CCO349) is a promising p-type thermoelectric ceramic oxide with high thermoelectric power factor PF, and reasonable thermoelectric figure-of-merit zT. CCO349 bulk ceramics were prepared from precursor powders with average particle sizes d50 ranging from about 10 µm to 0.5 µm, and conventional sintering at 920 °C. Remarkably, ceramics made from powders with optimum d50 of 1 µm exhibit enhanced electrical conductivity σ and power factor PF of 11,100 S/m and 340 µW/m·K2 at 800 °C, respectively. The ceramics exhibit anisotropic microstructures with Lotgering factors larger than 0.9, and anisotropic thermoelectric properties: the electrical conductivity σ and power factor PF are higher by 90% and 110% as compared to σ and PF at 800 °C, respectively, and the zT reaches nearly 0.16 at 800 °C. Moreover, a transverse thermoelectric device was fabricated based on alternating layers of CCO349 and silver with a power output of 5 mW at ΔT = 190 K.

Graphical abstract