• English
  • Deutsch
  • Log In
    Password Login
    Research Outputs
    Fundings & Projects
    Researchers
    Institutes
    Statistics
Repository logo
Fraunhofer-Gesellschaft
  1. Home
  2. Fraunhofer-Gesellschaft
  3. Scopus
  4. Achieving low thermal conductivity and high quality factor in sextuple-doped TiS2
 
  • Details
  • Full
Options
2025
Journal Article
Title

Achieving low thermal conductivity and high quality factor in sextuple-doped TiS2

Abstract
Transition-metal dichalcogenide TiS<inf>2</inf> stands out as a sustainable candidate for room- and medium-temperature thermoelectric materials due to its affordability, non-toxicity, eco-friendly nature and use of non-critical elements. However, its light element compositional nature results in a large thermal conductivity, which is the main limitation of the thermoelectric performance of TiS<inf>2</inf>. Here, we report a multi-element doping strategy by incorporating equivalent (Se, Zr) elements and introducing higher-valence (Nb, Ta) and lower-valence (Y, La) elements in pairs to minimize its lattice thermal conductivity, κ<inf>lat</inf>. The findings indicate a nearly 50 % decrease in κ<inf>lat</inf> across the entire temperature range, attributed to the presence of strong point-defect scattering after multi-element doping. Additionally, we observed a reduced dependency of κ<inf>lat</inf> on temperature in multi-element doped TiS<inf>2</inf>, as point defects can effectively scatter phonons at room temperature. As a result, the multi-element doped TiS<inf>2</inf> attained its highest ZT value of approximately 0.4 at 625 K. Incorporating higher-valence and lower-valence elements in pairs proves to be an effective method for decreasing lattice thermal conductivity without compromising too much of its large Seebeck coefficient.
Author(s)
Ding, Jinxue
Technische Universität Darmstadt
Li, Wei
Technische Universität Darmstadt
Thiem, Moritz
Technische Universität Darmstadt
Skokov, Konstantin P.
Technische Universität Darmstadt
Kintop, Nina
Fraunhofer-Einrichtung für Wertstoffkreisläufe und Ressourcenstrategie IWKS  
Weidenkaff, Anke
Fraunhofer-Einrichtung für Wertstoffkreisläufe und Ressourcenstrategie IWKS  
Xie, Wenjie
Fraunhofer-Einrichtung für Wertstoffkreisläufe und Ressourcenstrategie IWKS  
Journal
Acta Materialia  
Funder
Technische Universität Darmstadt
Open Access
DOI
10.1016/j.actamat.2024.120548
Additional link
Full text
Language
English
Fraunhofer-Einrichtung für Wertstoffkreisläufe und Ressourcenstrategie IWKS  
Keyword(s)
  • Lattice thermal conductivity

  • Multi-element doped TiS2

  • Point-defect scattering

  • Thermoelectric materials

  • Cookie settings
  • Imprint
  • Privacy policy
  • Api
  • Contact
© 2024