High thermoelectric performance of Co-doped Cu2SnS3-attapulgite nano-composites achieved by synergetic manipulation of electrical and thermal transport properties

Yaqing Zhao, Yan Gu, Peng'an Zong, Lin Pan, Lingjie Zhang, Kunihito Koumoto, Yifeng Wang

Research output: Contribution to journalArticlepeer-review

11 Scopus citations

Abstract

Mohite-type Cu2SnS3 has merged as a promising environmentally-friendly thermoelectric candidate. When heavily hole-doped, it exhibits a large power factor (PF) by virtue of a high electrical conductivity (σ), which results in an undesired high electronic thermal conductivity (κe) that limits the ZT value. In the present work, nanocomposites of Co-doped Cu2Sn0.8Co0.2S3 embedded with fibrous in-situ-dehydrated attapulgite (D-ATT) nanorods are prepared, and the effect of D-ATT on the thermoelectric properties are investigated. Results show that, with the incorporation of D-ATT, σ is lowered effectively as expected as a primary result of charge compensation caused by a donor effect of D-ATT, which gives rise to an optimal reduction of κe by 50% in the studied temperature range, accompanied with an enhanced Seebeck coefficient (S) and high PFs maintained at ~9.4 μW cm−1 K−2 at 773 K. Meanwhile, the lattice thermal conductivity is strongly suppressed due to the intensified phonon scattering with ATT addition, leading to an ultralow value of 0.27 W m−1 K−1 at 773 K. Finally, a maximal ZT of ~1.0 has been achieved in the sample with 0.2 wt% D-ATT at 773 K, which stands a new record for Cu2SnS3-based TE materials.

Original languageEnglish
Article number161338
JournalJournal of Alloys and Compounds
Volume887
DOIs
StatePublished - 20 Dec 2021

Keywords

  • Attapulgite
  • CuSnS
  • Nanocomposite
  • Thermoelectric
  • ZT

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