Doping by Design: Enhanced Thermoelectric Performance of GeSe Alloys Through Metavalent Bonding

Author:

Yu Yuan1ORCID,Zhou Chongjian2,Ghosh Tanmoy1,Schön Carl‐Friedrich1,Zhou Yiming1,Wahl Sophia1,Raghuwanshi Mohit1,Kerres Peter13,Bellin Christophe4,Shukla Abhay4,Cojocaru‐Mirédin Oana1,Wuttig Matthias135ORCID

Affiliation:

1. Institute of Physics (IA) RWTH Aachen University Sommerfeldstraße 14 52074 Aachen Germany

2. State Key Laboratory of Solidification Processing and Key Laboratory of Radiation Detection Materials and Devices Ministry of Industry and Information Technology Northwestern Polytechnical University Xi'an 710072 P. R. China

3. PGI 10 (Green IT) Forschungszentrum Jülich GmbH 52428 Jülich Germany

4. Institut de Minéralogie de Physique des Matériaux et de Cosmochimie Sorbonne Université UMR CNRS 7590 MNHN 4 Place Jussieu Paris F‐75005 France

5. Jülich – Aachen Research Alliance (JARA‐FIT and JARA‐HPC) RWTH Aachen University 52056 Aachen Germany

Abstract

AbstractDoping is usually the first step to tailor thermoelectrics. It enables precise control of the charge‐carrier concentration and concomitant transport properties. Doping should also turn GeSe, which features an intrinsically a low carrier concentration, into a competitive thermoelectric. Yet, elemental doping fails to improve the carrier concentration. In contrast, alloying with Ag–V–VI2 compounds causes a remarkable enhancement of thermoelectric performance. This advance is closely related to a transition in the bonding mechanism, as evidenced by sudden changes in the optical dielectric constant ε, the Born effective charge, the maximum of the optical absorption ε2(ω), and the bond‐breaking behavior. These property changes are indicative of the formation of metavalent bonding (MVB), leading to an octahedral‐like atomic arrangement. MVB is accompanied by a thermoelectric‐favorable band structure featuring anisotropic bands with small effective masses and a large degeneracy. A quantum‐mechanical map, which distinguishes different types of chemical bonding, reveals that orthorhombic GeSe employs covalent bonding, while rhombohedral and cubic GeSe utilize MVB. The transition from covalent to MVB goes along with a pronounced improvement in thermoelectric performance. The failure or success of different dopants can be explained by this concept, which redefines doping rules and provides a “treasure map” to tailor p‐bonded chalcogenides.

Funder

California Department of Fish and Game

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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