Thermoelectric (TE) technology offers a unique way to manage heat and generate electricity without moving parts or traditional refrigerants. Using the Seebeck and Peltier effects, TE devices can convert low-grade waste heat directly into electrical power or provide precise cooling. Their solid-state design makes them reliable, compact, and suitable for applications ranging from industrial heat recovery to powering remote sensors and cooling sensitive electronics.
Despite this potential, commercial near-room-temperature thermoelectrics are currently restricted by a fundamental materials bottleneck. Prevailing technologies rely almost exclusively on bismuth telluride (Bi2Te3) alloys. Tellurium is among the rarest stable elements in the Earth’s crust (<0.001 ppm), with a global annual production of less than 500 tons. This scarcity, exacerbated by toxicity, renders Bi2Te3-based solutions economically and environmentally unsustainable for large-scale deployment. Furthermore, current commercial modules exhibit modest conversion efficiencies (~3-6%), underscoring the need for materials with both superior dimensionless figures of merit (zT) and higher elemental abundance.
This project addresses this dual challenge by developing a new generation of tellurium-free TE materials and modules based on magnesium-based compounds. Magnesium offers a compelling alternative due to its high crustal abundance, low density, and benign environmental profile. By optimizing Mg-based architectures for both n-type and p-type legs, the research aims to surpass traditional performance limits through precise control of carrier concentration and phonon scattering mechanisms. The technical approach integrates advanced synthesis protocols, microstructural refinement, and sophisticated contact engineering to mitigate parasitic losses at the device level.
The expected impact of this research is a transformative shift in the thermoelectric landscape. Magnesium-based modules would offer a sustainable, higher-performance alternative to current devices, enabling broader use in energy harvesting and thermal management applications, from recovering waste heat in factories to cooling next-generation electronics, without relying on scarce or toxic elements.