Manipulation of Band Degeneracy and Lattice Strain for Extraordinary PbTe Thermoelectrics

Author:

Wu Yixuan1,Nan Pengfei2,Chen Zhiwei1,Zeng Zezhu3,Lin Siqi1,Zhang Xinyue1,Dong Hongliang4,Chen Zhiqiang4,Gu Hongkai45,Li Wen1,Chen Yue3ORCID,Ge Binghui2,Pei Yanzhong1ORCID

Affiliation:

1. Interdisciplinary Materials Research Center, School of Materials Science and Engineering, Tongji Univ., 4800 Caoan Rd., Shanghai 201804, China

2. Institute of Physical Science and Information Technology, Anhui University, Hefei 230601, China

3. Department of Mechanical Engineering, The University of Hong Kong, Pokfulam Road, Hong Kong SAR, China

4. Center for High Pressure Science and Technology Advanced Research, Shanghai 201203, China

5. State Key Laboratory of Superhard Materials, Jilin University, Changchun 130012, China

Abstract

Maximizing band degeneracy and minimizing phonon relaxation time are proven to be successful for advancing thermoelectrics. Alloying with monotellurides has been known to be an effective approach for converging the valence bands of PbTe for electronic improvements, while the lattice thermal conductivity of the materials remains available room for being further reduced. It is recently revealed that the broadening of phonon dispersion measures the strength of phonon scattering, and lattice dislocations are particularly effective sources for such broadening through lattice strain fluctuations. In this work, a fine control of MnTe and EuTe alloying enables a significant increase in density of electron states near the valence band edge of PbTe due to involvement of multiple transporting bands, while the creation of dense in-grain dislocations leads to an effective broadening in phonon dispersion for reduced phonon lifetime due to the large strain fluctuations of dislocations as confirmed by synchrotron X-ray diffraction. The synergy of both electronic and thermal improvements successfully leads the average thermoelectric figure of merit to be higher than that ever reported for p-type PbTe at working temperatures.

Funder

RGC

Publisher

American Association for the Advancement of Science (AAAS)

Subject

Multidisciplinary

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