Improvement of Low-Temperature zT in a Mg<sub>3</sub> Sb<sub>2</sub> -Mg<sub>3</sub> Bi<sub>2</sub> Solid Solution via Mg-Vapor Annealing.

Wood, Maxwell; Kuo, Jimmy Jiahong; Imasato, Kazuki; Snyder, Gerald Jeffrey · Adv Mater · 2019

basic_science · Level V

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Abstract

Materials with high zT over a wide temperature range are essential for thermoelectric applications. n-Type Mg<sub>3</sub> Sb<sub>2</sub> -based compounds have been shown to achieve high zT at 700 K, but their performance at low temperatures (<500 K) is compromised due to their highly resistive grain boundaries. Syntheses and optimization processes to mitigate this grain-boundary effect has been limited due to loss of Mg, which hinders a sample's n-type dopability. A Mg-vapor anneal processing step that grows a sample's grain size and preserves its n-type carrier concentration during annealing is demonstrated. The electrical conductivity and mobility of the samples with large grain size follows a phonon-scattering-dominated T<sup>-3/2</sup> trend over a large temperature range, further supporting the conclusion that the temperature-activated mobility in Mg<sub>3</sub> Sb<sub>2</sub> -based materials is caused by resistive grain boundaries. The measured Hall mobility of electrons reaches 170 cm<sup>2</sup> V<sup>-1</sup> s<sup>-1</sup> in annealed 800 °C sintered Mg<sub>3 + δ</sub> Sb<sub>1.49</sub> Bi<sub>0.5</sub> Te<sub>0.01</sub> , the highest ever reported for Mg<sub>3</sub> Sb<sub>2</sub> -based thermoelectric materials. In particular, a sample with grain size >30 mm has a zT 0.8 at 300 K, which is comparable to commercial thermoelectric materials used at room temperature (n-type Bi<sub>2</sub> Te<sub>3</sub> ) while reaching zT 1.4 at 700 K, allowing applications over a wider temperature scale.