Hierarchical Architecturing for Layered Thermoelectric Sulfides and Chalcogenides

Materials (Basel). 2015 Mar 16;8(3):1124-1149. doi: 10.3390/ma8031124.

Abstract

Sulfides are promising candidates for environment-friendly and cost-effective thermoelectric materials. In this article, we review the recent progress in all-length-scale hierarchical architecturing for sulfides and chalcogenides, highlighting the key strategies used to enhance their thermoelectric performance. We primarily focus on TiS₂-based layered sulfides, misfit layered sulfides, homologous chalcogenides, accordion-like layered Sn chalcogenides, and thermoelectric minerals. CS₂ sulfurization is an appropriate method for preparing sulfide thermoelectric materials. At the atomic scale, the intercalation of guest atoms/layers into host crystal layers, crystal-structural evolution enabled by the homologous series, and low-energy atomic vibration effectively scatter phonons, resulting in a reduced lattice thermal conductivity. At the nanoscale, stacking faults further reduce the lattice thermal conductivity. At the microscale, the highly oriented microtexture allows high carrier mobility in the in-plane direction, leading to a high thermoelectric power factor.

Keywords: CS2 sulfurization; accordion-like layered chalcogenides; crystal-structural evolution; homologous chalcogenides; intercalation; low-energy atomic vibration; misfit layered chalcogenides; oriented texture; stacking fault; thermoelectric minerals; thermoelectric sulfides; thermoelectrics.

Publication types

  • Review