Development of novel thermoelectric materials by reduction of lattice thermal conductivity

Chunlei Wan, Yifeng Wang, Ning Wang, Wataru Norimatsu, Michiko Kusunoki, Kunihito Koumoto

Research output: Contribution to journalReview articlepeer-review

161 Scopus citations

Abstract

Thermal conductivity is one of the key parameters in the figure of merit of thermoelectric materials. Over the past decade, most progress in thermoelectric materials has been made by reducing their thermal conductivity while preserving their electrical properties. The phonon scattering mechanisms involved in these strategies are reviewed here and divided into three groups, including (i) disorder or distortion of unit cells, (ii) resonant scattering by localized rattling atoms and (iii) interface scattering. In addition, we propose construction of a 'natural superlattice' in thermoelectric materials by intercalating an MX layer into the van der Waals gap of a layered T X 2 structure which has a general formula of (M X)1+x(T X2)n (M = Pb, Bi, Sn, Sb or a rare earth element; T = Ti, V, Cr, Nb or Ta; X = S or Se and n = 1, 2, 3). We demonstrate that one of the intercalation compounds (SnS)1.2(TiS2)2 has better thermoelectric properties compared with pure TiS2 in the direction parallel to the layers, as the electron mobility is maintained while the phonon transport is significantly suppressed owing to the reduction in the transverse phonon velocities.

Original languageEnglish
Article number044306
JournalScience and Technology of Advanced Materials
Volume11
Issue number4
DOIs
StatePublished - Aug 2010
Externally publishedYes

Keywords

  • Misfit layer compound
  • Natural superlattice
  • Thermal conductivity
  • Thermoelectric

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