Epitaxial SiGeSn alloys for CMOS-compatible thermoelectric devices
Abstract
The integration of thermoelectric devices into mainstream microelectronic technological platform could be a major breakthrough in various fields within the \emph{so-called} Green-IT realm. In this article, the thermoelectric properties of heteroepitaxial SiGeSn alloys, a novel CMOS compatible material system, are evaluated to assess their possible application in thermoelectric devices. To this purpose, starting from the experimentally low lattice thermal conductivity of SiGeSn/Ge/Si layers of about 1-2 W/mK assessed by means of 3- measurements, the figure of merits are calculated through the use of Boltzmann transport equation, taking into account the relevant inter-valley scattering processes, peculiar of this multi-valley material system. Values for the figure of merit exceeding have been obtained for both p- and n- type material at operating temperatures within the 300---400 K range, i.e. at a typical On-Chip temperatures. In this interval, the predicted power factor also features very competitive values of the order of 20 . Our finding indicates that this new class of Si-based materials has extremely good prospects for real-world applications, and can further stimulate scientific investigation in this ambit.
Keywords
Cite
@article{arxiv.2608.03638,
title = {Epitaxial SiGeSn alloys for CMOS-compatible thermoelectric devices},
author = {Patrizio Graziosi and Damiano Marian and Andrea Tomadin and Stefano Roddaro and Omar Concepción and Johnny Tiscareño-Ramírez and Agnieszka Anna Corley-Wiciak and Dan Buca and Giovanni Capellini and Michele Virgilio},
journal= {arXiv preprint arXiv:2608.03638},
year = {2026}
}
Comments
5 figures