Issue 12, 2021

An over 10% module efficiency obtained using non-Bi2Te3 thermoelectric materials for recovering heat of <600 K

Abstract

Thermoelectric technology offers the unique advantages of being completely solid-state, silent and emission-free for waste-heat recovery applications. Despite this, existing thermoelectric modules, particularly for recovering low-grade but abundant heat of <600 K, have been limited to Bi2Te3 alloys in both p- and n-type conductors for more than half a century. These Bi2Te3-based modules have remained stagnant with a poor efficiency of <7%. Recently developed p-GeTe and n-Mg3Sb2 have shown great potential in competing with the performance of historical Bi2Te3 thermoelectrics, realizing efficient thermoelectric applications while creatively using non-Bi2Te3 materials. In this work, we demonstrated a module-level conversion efficiency of >10% with a heat source temperature of <600 K using p-GeTe/n-Mg3SbBi thermoelectrics. This was enabled by the extraordinary thermoelectric performance of both the p- and n-type materials. In addition, a design of Ag/SnTe/GeTe and Ni/Fe/Mg3SbBi contacts enabled an efficient prevention of chemical diffusion as well as low interfacial resistivity. This work illustrates that non-Bi2Te3 thermoelectrics have the potential to realize an even higher efficiency in recovering abundant low-grade (<600 K) waste heat.

Graphical abstract: An over 10% module efficiency obtained using non-Bi2Te3 thermoelectric materials for recovering heat of <600 K

Supplementary files

Article information

Article type
Paper
Submitted
21 Jul 2021
Accepted
26 Oct 2021
First published
26 Oct 2021

Energy Environ. Sci., 2021,14, 6506-6513

An over 10% module efficiency obtained using non-Bi2Te3 thermoelectric materials for recovering heat of <600 K

Z. Bu, X. Zhang, Y. Hu, Z. Chen, S. Lin, W. Li and Y. Pei, Energy Environ. Sci., 2021, 14, 6506 DOI: 10.1039/D1EE02253A

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