Enhanced atomic ordering leads to high thermoelectric performance in AgSbTe<sub>2</sub>.

Roychowdhury, Subhajit; Ghosh, Tanmoy; Arora, Raagya; Samanta, Manisha; Xie, Lin; Singh, Niraj Kumar; Soni, Ajay; He, Jiaqing et al. · Science · 2021

basic_science · Level V

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Abstract

High thermoelectric performance is generally achieved through either electronic structure modulations or phonon scattering enhancements, which often counteract each other. A leap in performance requires innovative strategies that simultaneously optimize electronic and phonon transports. We demonstrate high thermoelectric performance with a near room-temperature figure of merit, <i>ZT</i> ~ 1.5, and a maximum <i>ZT</i> ~ 2.6 at 573 kelvin, by optimizing atomic disorder in cadmium-doped polycrystalline silver antimony telluride (AgSbTe<sub>2</sub>). Cadmium doping in AgSbTe<sub>2</sub> enhances cationic ordering, which simultaneously improves electronic properties by tuning disorder-induced localization of electronic states and reduces lattice thermal conductivity through spontaneous formation of nanoscale (~2 to 4 nanometers) superstructures and coupling of soft vibrations localized within ~1 nanometer around cadmium sites with local strain modulation. The strategy is applicable to most other thermoelectric materials that exhibit inherent atomic disorder.