Intensive Widmannstätten Nanoprecipitates Catalyze SnTe With State‐of‐the‐Art Thermoelectric Performance

T Tu Lyu (College of Materials Science and Engineering Shenzhen Key Laboratory of Special Functional Materials Guangdong Provincial Key Laboratory of Deep Earth Sciences and Geothermal Energy Exploitation and Utilization Guangdong Research Center for Interfacial Engineering of Functional Materials Institute of Deep Earth Sciences and Green Energy Shenzhen University Shenzhen 518060 China) X Xiao‐Lei Shi (School of Chemistry and Physics ARC Research Hub in Zero‐Emission Power Generation for Carbon Neutrality and Centre for Materials Science Queensland University of Technology Brisbane Queensland Australia) L Lipeng Hu M Moran Wang J Jiaying Peng (State Key Laboratory of Chemical Resource Engineering Laboratory of Electrochemical Process and Technology for Materials Beijing University of Chemical Technology Beijing 100029 P.R. China) S Siyuan Song (College of Materials Science and Engineering Shenzhen Key Laboratory of Special Functional Materials Guangdong Provincial Key Laboratory of Deep Earth Sciences and Geothermal Energy Exploitation and Utilization Guangdong Research Center for Interfacial Engineering of Functional Materials Institute of Deep Earth Sciences and Green Energy Shenzhen University Shenzhen 518060 China) H Haoran Luo W Wenyi Chen M Meng Li F Feng Rao Z Zhi‐Gang Chen (School of Chemistry and Physics ARC Research Hub in Zero‐Emission Power Generation for Carbon Neutrality and Centre for Materials Science Queensland University of Technology Brisbane Queensland Australia)

Abstract

AbstractNanoprecipitates play a vital role in designing high‐performance thermoelectric materials, particularly for those with short phonon mean‐free paths. However, their effectiveness in reducing lattice thermal conductivity is hindered by the uncontrollable intensity, poor interfacial coherence, and suboptimal morphology. To address these limitations, AgPbSbTe3 is used to alloy SnTe to form intensive Ag2Te Widmannstätten nanoprecipitates for obtaining state‐of‐the‐art thermoelectric performance. Advanced microscopy characterizations reveal the crystallographic orientation relationships between SnTe and Ag2Te to guide the lath‐shaped morphology of Ag2Te, leading to the formation of the high‐intensity Widmannstätten nanoprecipitates, which effectively scatter phonons to reduce the lattice thermal conductivity. Togethering the optimized electrical properties through carrier concentration adjustment, band convergence, and the energy filtering effect, a maximum figure of merit ZT of 1.5 at 723 K and an average ZT of 1.1 between 423 and 823 K is achieved in (SnTe)0.80(Ag1.05PbSb0.95Te3)0.20, enabling a single‐leg device and two‐pair module with energy‐conversion efficiency of 7.22% and 4.26% under a temperature difference of 450 K, respectively. The findings highlight the potential of intensive Widmannstätten nanoprecipitates as effective phonon scattering centers, providing a new pathway to enhance the thermoelectric performance of chalcogenides.

Article Details

Volume / Issue Vol. 37, Issue 33
Published August 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (11)

T

Tu Lyu

College of Materials Science and Engineering Shenzhen Key Laboratory of Special Functional Materials Guangdong Provincial Key Laboratory of Deep Earth Sciences and Geothermal Energy Exploitation and Utilization Guangdong Research Center for Interfacial Engineering of Functional Materials Institute of Deep Earth Sciences and Green Energy Shenzhen University Shenzhen 518060 China

X

Xiao‐Lei Shi

School of Chemistry and Physics ARC Research Hub in Zero‐Emission Power Generation for Carbon Neutrality and Centre for Materials Science Queensland University of Technology Brisbane Queensland Australia

L

Lipeng Hu

M

Moran Wang

J

Jiaying Peng

State Key Laboratory of Chemical Resource Engineering Laboratory of Electrochemical Process and Technology for Materials Beijing University of Chemical Technology Beijing 100029 P.R. China

S

Siyuan Song

College of Materials Science and Engineering Shenzhen Key Laboratory of Special Functional Materials Guangdong Provincial Key Laboratory of Deep Earth Sciences and Geothermal Energy Exploitation and Utilization Guangdong Research Center for Interfacial Engineering of Functional Materials Institute of Deep Earth Sciences and Green Energy Shenzhen University Shenzhen 518060 China

H

Haoran Luo

W

Wenyi Chen

M

Meng Li

F

Feng Rao

Z

Zhi‐Gang Chen

School of Chemistry and Physics ARC Research Hub in Zero‐Emission Power Generation for Carbon Neutrality and Centre for Materials Science Queensland University of Technology Brisbane Queensland Australia