High Thermoelectric Performance in Phonon‐Glass Electron‐Crystal Like AgSbTe2

Author:

Taneja Vaishali1,Das Subarna1,Dolui Kapildeb2,Ghosh Tanmoy1,Bhui Animesh1,Bhat Usha3,Kedia Dinesh Kumar4,Pal Koushik5,Datta Ranjan3,Biswas Kanishka1ORCID

Affiliation:

1. New Chemistry Unit International Centre for Materials Science and School of Advanced Materials Jawaharlal Nehru Centre for Advanced Scientific Research (JNCASR) Jakkur P.O. Bangalore 560064 India

2. Department of Materials Science & Metallurgy University of Cambridge 27 Charles Babbage Road Cambridge CB3 0FS UK

3. Chemistry and Physics of Materials Unit International Centre for Materials Science and School of Advanced Materials Jawaharlal Nehru Centre for Advanced Scientific Research (JNCASR) Jakkur P.O. Bangalore 560064 India

4. Department of Physics Indian Institute of Science Education and Research, Pune Dr. Homi Bhabha Road Pune 411008 India

5. Department of Physics Indian Institute of Technology Kanpur Kanpur 208016 India

Abstract

AbstractAchieving glass‐like ultra‐low thermal conductivity in crystalline solids with high electrical conductivity, a crucial requirement for high‐performance thermoelectrics , continues to be a formidable challenge. A careful balance between electrical and thermal transport is essential for optimizing the thermoelectric performance. Despite this inherent trade‐off, the experimental realization of an ideal thermoelectric material with a phonon‐glass electron‐crystal (PGEC) nature has rarely been achieved. Here, PGEC‐like AgSbTe2 is demonstrated by tuning the atomic disorder upon Yb doping, which results in an outstanding thermoelectric performance with figure of merit, zT ≈ 2.4 at 573 K. Yb‐doping‐induced enhanced atomic ordering decreases the overlap between the hole and phonon mean free paths and consequently leads to a PGEC‐like transport behavior in AgSbTe2. A twofold increase in electrical mobility is observed while keeping the position of the Fermi level (EF) nearly unchanged and corroborates the enhanced crystalline nature of the AgSbTe2 lattice upon Yb doping for electrical transport. The cation‐ordered domains, lead to the formation of nanoscale superstructures (≈2 to 4 nm) that strongly scatter heat‐carrying phonons, resulting in a temperature‐independent glass‐like thermal conductivity. The strategy paves the way for realizing high thermoelectric performance in various disordered crystals by making them amorphous to phonons while favoring crystal‐like electrical transport.

Funder

Indian Institute of Technology Kanpur

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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