| Literature DB >> 28397364 |
Zhiwei Chen1, Zhengzhong Jian1, Wen Li1, Yunjie Chang2, Binghui Ge2, Riley Hanus3, Jiong Yang4, Yue Chen5, Mingxin Huang5, Gerald Jeffrey Snyder3, Yanzhong Pei1.
Abstract
Phonon scattering by nanostructures and point defects has become the primary strategy for minimizing the lattice thermal conductivity (κL ) in thermoelectric materials. However, these scatterers are only effective at the extremes of the phonon spectrum. Recently, it has been demonstrated that dislocations are effective at scattering the remaining mid-frequency phonons as well. In this work, by varying the concentration of Na in Pb0.97 Eu0.03 Te, it has been determined that the dominant microstructural features are point defects, lattice dislocations, and nanostructure interfaces. This study reveals that dense lattice dislocations (≈4 × 1012 cm-2 ) are particularly effective at reducing κL . When the dislocation concentration is maximized, one of the lowest κL values reported for PbTe is achieved. Furthermore, due to the band convergence of the alloyed 3% mol. EuTe the electronic performance is enhanced, and a high thermoelectric figure of merit, zT, of ≈2.2 is achieved. This work not only demonstrates the effectiveness of dense lattice dislocations as a means of lowering κL , but also the importance of engineering both thermal and electronic transport simultaneously when designing high-performance thermoelectrics.Entities:
Keywords: band convergence; lattice dislocations; lattice thermal conductivity; thermoelectrics
Year: 2017 PMID: 28397364 DOI: 10.1002/adma.201606768
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849