The effect of spark plasma sintering parameters on the microstructure and thermoelectric properties of p-type Bi<sub>0.5</sub>Sb<sub>1.5</sub>Te<sub>3 </sub>alloys
Oluşturanlar
- 1. Kutahya Dumlupinar Univ, Kutahya Vocat Sch Tech Sci, Dept Elect, TR-43100 Kutahya, Turkiye
- 2. Univ Antwerp, NANOlight Ctr Excellence, Dept Phys, B-2020 Antwerp, Belgium
- 3. Eskisehir Tech Univ, Dept Mat Sci & Engn, TR-26555 Eskisehir, Turkiye
Açıklama
Bismuth telluride-based alloys are commonly employed as commercial thermoelectric materials at room temperature. This work explores the influence of SPS parameters such as temperature, pressure, and dwell time on the microstructure and thermoelectric properties of the p-type Bi0.5Sb1.5Te3 alloys. In this context, the polycrystalline samples were synthesized by a solid-state reaction, followed by SPS within the 425-500 degrees C temperature range, under pressures between 40 and 50 MPa, and for 6-10 min. The structural investigation by X-ray diffraction (XRD) and scanning electron microscopy (SEM) revealed significant differences in lattice parameters, grain orientation, and defect concentrations compared to the SPS conditions. Thermoelectric properties, including electrical conductivity, Seebeck coefficient, thermal conductivity, and figure of merit (ZT), were thoroughly evaluated. The Seebeck coefficient was 217 mu V K-1, and electrical resistivity was optimized at 13.1 mu S2 m. Thermal conductivity decreased with pressure to 0.77 W m-1 K-1, reflecting increased phonon scattering via microstructure optimization. The optimal sample, which was sintered at 500 degrees C, 46 MPa, and 8-min dwell time, exhibited a power factor of 3.5 mW/mK2 and a peak zT value of 1.41 at 50 degrees C, which is a 16 % and 38 % improvement, respectively, compared with baseline samples. The results highlight the significance of optimizing SPS parameters to maximize the overall thermoelectric efficiency of Bi2Te3-based materials through the optimization of electrical and thermal transport properties.
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