Thermoelectric Cu<sub>12</sub> Sb<sub>4</sub> S<sub>13</sub> -Based Synthetic Minerals with a Sublimation-Derived Porous Network.

Hu, Haihua; Zhuang, Hua-Lu; Jiang, Yilin; Shi, Jianlei; Li, Jing-Wei; Cai, Bowen; Han, Zhanran; Pei, Jun et al. · Adv Mater · 2021

basic_science · Level V

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Abstract

Pores in a solid can effectively reduce thermal conduction, but they are not favored in thermoelectric materials due to simultaneous deterioration of electrical conductivity. Conceivably, creating a porous structure may endow thermoelectric performance enhancement provided that overwhelming reduction of electrical conductivity can be suppressed. This work demonstrates such an example, in which a porous structure is formed leading to a significant enhancement in the thermoelectric figure of merit (zT). By a unique BiI<sub>3</sub> sublimation technique, pore networks can be introduced into tetrahedrite Cu<sub>12</sub> Sb<sub>4</sub> S<sub>13</sub> -based materials, accompanied by changes in their hierarchical structures. The addition of a small quantity of BiI<sub>3</sub> (0.7 vol%) results in a ≈72% reduction in the lattice thermal conductivity, whereas the electrical conductivity is improved due to unexpected enhanced carrier mobility. As a result, an enhanced zT of 1.15 at 723 K in porous tetrahedrite and a high conversion efficiency of 6% at ΔT = 419 K in a fabricated segmented single-leg based on this porous material are achieved. This work offers an effective way to concurrently modulate the electrical and thermal properties during the synthesis of high-performance porous thermoelectric materials.