Enhancing Thermoelectric Properties in SiGe Alloy through SiC Nanoparticle Doping
Researchers from the China Institute of Atomic Energy have successfully developed a novel approach to enhance the thermoelectric properties of SiGe alloy and delay its attenuation. By incorporating SiC nanoparticles into the SiGe matrix, the team achieved a significant improvement in the power factor and a substantial decrease in thermal conductivity. The resulting material, (Si0.8Ge0.2)0.98P0.02(SiC)0.015, displayed a ZT value of 1.308 at 1023 K, with only a 2.4% reduction in thermoelectric performance after thermal aging.
Key Takeaways:
- The research team successfully fabricated n-type (Si0.8Ge0.2)0.98P0.02(SiC) x alloy using high-energy ball milling followed by spark plasma sintering (SPS).
- The introduction of SiC nanoparticles into the SiGe matrix resulted in a significant decrease in thermal conductivity, from 4.32 W m-1 K-1 to 2.08 W m-1 K-1.
- The composite effect of SiC and the SiGe matrix improved the power factor, reaching 28.4 μW cm-1 K-2.
- The (Si0.8Ge0.2)0.98P0.02(SiC)0.015 sample achieved a ZT value of 1.308 at 1023 K, with only a 2.4% reduction in thermoelectric performance after thermal aging.
- The research demonstrated that SiC nanoparticle doping can effectively enhance the thermoelectric properties of SiGe alloy and delay its attenuation.
- The study was funded by the China National Nuclear Corporation and CNNC centralized R&D project.
- Additional authors contributing to the research include Taolin Zhao, Xin Li, Weiming Wu, Jialin Gu, and Yunze Han.
Statistics:
- The thermal conductivity of the (Si0.8Ge0.2)0.98P0.02(SiC) x alloy decreased from 4.32 W m-1 K-1 to 2.08 W m-1 K-1.
- The power factor of the (Si0.8Ge0.2)0.98P0.02(SiC)0.015 sample reached 28.4 μW cm-1 K-2.
- The ZT value of the (Si0.8Ge0.2)0.98P0.02(SiC)0.015 sample was 1.308 at 1023 K.
- The thermoelectric performance of the (Si0.8Ge0.2)0.98P0.02(SiC)0.015 sample decreased by only 2.4% after thermal aging.
Sources:
- ACS Omega, 2025.
- China Institute of Atomic Energy, Beijing 102413, People's Republic of China.
- Xian Tang, China Institute of Atomic Energy, Beijing 102413, People's Republic of China.
- Taolin Zhao, Xin Li, Weiming Wu, Jialin Gu, and Yunze Han.