Some Thermoelectric Characteristics of Si0.95Ge0.05 Alloy and Monolithic Module Performance

Authors

  • K. Barbakadze Sukhumi Institute of Physics and Technology, 7 Mindeli str., 0186 Tbilisi
  • Z. Adamia 1. University of Georgia, 77a Kostava str., 0171 Tbilisi. 2. Sukhumi State University, 61 Politkovskaya str., 0186 Tbilisi. https://orcid.org/0000-0001-6928-8055
  • I. Nakhutsrishvili Institute of Cybernetics of Georgian Technical University, 6 Anjaparidze str., 0186 Tbilisi. https://orcid.org/0000-0002-7961-3437

DOI:

https://doi.org/10.63527/1607-8829-2026-3-51-62

Keywords:

silicon-germanium alloy, low Germanium content, thermoelectric characteristics, monolithic module, conversion efficiency

Abstract

Si-Ge alloys serve as benchmark materials for high-temperature thermoelectric generators, particularly in aerospace power systems. To lower fabrication costs and expand terrestrial applications, reducing the Germanium content while maintaining competitive conversion efficiency remains a critical engineering objective. In this work, we investigate the high-temperature thermoelectric characteristics of a low-Ge content alloy, Si0.95Ge0.05. The transport metrics, the temperature-dependent trajectories of the electronic quality factor (BE) and the thermoelectric compatibility factor (CF) are analyzed to elucidate underlying charge carrier scattering and system segmentation viability. Furthermore, the material parameter (B) and generalized material parameter (B*) are calculated to predict the upper bounds of the dimensionless the gap between material properties and practical device-level implementation, monolithic thermoelectric generator modules with 16 and 24 branches were fabricated using vacuum induction hot pressing. The 24-branch module achieved a peak power output of 2.25 W and a practical thermal-to-electrical energy conversion efficiency of 9.2% under a hot-junction temperature of 480 °C, establishing a highly competitive benchmark for low-Ge thermoelectric systems.

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Published

30.09.2026

How to Cite

Barbakadze, K., Adamia, Z., & Nakhutsrishvili, I. (2026). Some Thermoelectric Characteristics of Si0.95Ge0.05 Alloy and Monolithic Module Performance. Journal of Thermoelectricity, (3), 51–62. https://doi.org/10.63527/1607-8829-2026-3-51-62

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Materials research

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