A Route to High Thermoelectric Performance: Solution‐Based Control of Microstructure and Composition in Ag2Se

Author:

Kleinhanns Tobias1,Milillo Francesco1,Calcabrini Mariano1,Fiedler Christine1,Horta Sharona1,Balazs Daniel1,Strumolo Marissa J.2,Hasler Roger3,Llorca Jordi4,Tkadletz Michael5,Brutchey Richard L.2,Ibáñez Maria1ORCID

Affiliation:

1. Institute of Science and Technology Austria (ISTA) Am Campus 1 Klosterneuburg 3400 Austria

2. Department of Chemistry University of Southern California Los Angeles California 90089 USA

3. Laboratory for Life Sciences and Technology (LiST) Faculty of Medicine and Dentistry Danube Private University Krems 3500 Austria

4. Institute of Energy Technologies Department of Chemical Engineering and Barcelona Research Center in Multiscale Science and Engineering Universitat Politècnica de Catalunya EEBE, Eduard Maristany 16 Barcelona 08019 Spain

5. Department of Materials Science Montanuniversität Leoben Franz Josef‐Straße 18 Leoben 8700 Austria

Abstract

AbstractThermoelectric materials convert heat into electricity, with a broad range of applications near room temperature (RT). However, the library of RT high‐performance materials is limited. Traditional high‐temperature synthetic methods constrain the range of materials achievable, hindering the ability to surpass crystal structure limitations and engineer defects. Here, a solution‐based synthetic approach is introduced, enabling RT synthesis of powders and exploration of densification at lower temperatures to influence the material's microstructure. The approach is exemplified by Ag2Se, an n‐type alternative to bismuth telluride. It is demonstrated that the concentration of Ag interstitials, grain boundaries, and dislocations are directly correlated to the sintering temperature, and achieve a figure of merit of 1.1 from RT to 100 °C after optimization. Moreover, insights into and resolve Ag2Se's challenges are provided, including stoichiometry issues leading to irreproducible performances. This work highlights the potential of RT solution synthesis in expanding the repertoire of high‐performance thermoelectric materials for practical applications.

Funder

Ministerio de Ciencia e Innovación

Departament de Salut, Generalitat de Catalunya

Werner Siemens-Stiftung

National Science Foundation

Publisher

Wiley

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