4.6 Article

Local nanostructures enhanced the thermoelectric performance of n-type PbTe

Journal

JOURNAL OF MATERIALS CHEMISTRY A
Volume 7, Issue 31, Pages 18458-18467

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c9ta06247e

Keywords

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Funding

  1. National Natural Science Foundation of China [51672065, 21503065, 11774278]
  2. China Postdoctoral Science Foundation [2015M571924]
  3. Singapore MOE AcRF Tier 2 [2018-T2-1-010]
  4. Singapore A*STAR Pharos Program [SERC 1527200022]

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Microstructure control and carrier concentration engineering are effective approaches to optimize thermal transport and electrical properties in thermoelectric materials. Hereby, we have developed a facile strategy to construct locally nanostructured PbTe in a micro-sized PbTe frame (PbTe/PbTe@C:Ag) by using mixed building blocks of PbTe@C:Ag nanoparticles and PbTe nanocubes through spark plasma sintering (SPS). The carbon shell serves as a diffusion barrier to prevent grain growth leading to the formation of locally nanostructured PbTe parts with multiscale nano/micro-sized grain boundaries/interfaces, pores, Ag based nano-precipitates and other defects. They collectively scatter phonons in low-middle frequencies reducing lattice thermal conductivity significantly. In the micro-sized PbTe frame grown from pure PbTe nanocubes, temperature dependent X-ray diffraction and Hall measurements results suggest that Ag may show a dynamic doping behaviour at elevated temperature. This could further enhance the high-frequency phonon scattering and suppress the bipolar effect, resulting in a low lattice thermal conductivity of 0.39 W m(-1) K-1. Furthermore, the micro-sized PbTe frame maintains relatively high carrier mobility. At 723 K, a high power factor of 20.4 mu W cm(-1) K-2 and ZT value of 1.65 have been achieved. Our strategy demonstrates superiority and versatility in constructing desired nano- and micro-structures and tuning the carrier concentration of PbTe towards high thermoelectric performance.

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