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Crystalline Structure-Dependent Mechanical and Thermoelectric Performance in Ag 2 Se 1- x S x System.
- Source :
-
Research (Washington, D.C.) [Research (Wash D C)] 2020 Jul 31; Vol. 2020, pp. 6591981. Date of Electronic Publication: 2020 Jul 31 (Print Publication: 2020). - Publication Year :
- 2020
-
Abstract
- Self-powered wearable electronics require thermoelectric materials simultaneously with a high dimensionless figure of merit ( zT ) and good flexibility to convert the heat discharged by the human body into electricity. Ag <subscript>2</subscript> (S,Se)-based semiconducting materials can well satisfy these requirements, and thus, they are attracting great attention in thermoelectric society recently. Ag <subscript>2</subscript> (S,Se) crystalizes in an orthorhombic structure or monoclinic structure, depending on the detailed S/Se atomic ratio, but the relationship between its crystalline structure and mechanical/thermoelectric performance is still unclear to date. In this study, a series of Ag <subscript>2</subscript> Se <subscript>1- x </subscript> S <subscript> x </subscript> ( x = 0, 0.1, 0.2, 0.3, 0.4, and 0.45) samples were prepared and their mechanical and thermoelectric performance dependence on the crystalline structure was systematically investigated. x = 0.3 in the Ag <subscript>2</subscript> Se <subscript>1- x </subscript> S <subscript> x </subscript> system was found to be the transition boundary between orthorhombic and monoclinic structures. Mechanical property measurement shows that the orthorhombic Ag <subscript>2</subscript> Se <subscript>1- x </subscript> S <subscript> x </subscript> samples are brittle while the monoclinic Ag <subscript>2</subscript> Se <subscript>1- x </subscript> S <subscript>x</subscript> samples are ductile and flexible. In addition, the orthorhombic Ag <subscript>2</subscript> Se <subscript>1- x </subscript> S <subscript> x </subscript> samples show better electrical transport performance and higher zT than the monoclinic samples under a comparable carrier concentration, most likely due to their weaker electron-phonon interactions. This study sheds light on the further development of flexible inorganic TE materials.<br />Competing Interests: The authors declare no competing financial interests.<br /> (Copyright © 2020 Jiasheng Liang et al.)
Details
- Language :
- English
- ISSN :
- 2639-5274
- Volume :
- 2020
- Database :
- MEDLINE
- Journal :
- Research (Washington, D.C.)
- Publication Type :
- Academic Journal
- Accession number :
- 33029590
- Full Text :
- https://doi.org/10.34133/2020/6591981