Direct Observation of Inherent Atomic-Scale Defect Disorders responsible for High-Performance Ti<sub>1-</sub><sub>x</sub> Hf<sub>x</sub> NiSn<sub>1-</sub><sub>y</sub> Sb<sub>y</sub> Half-Heusler Thermoelectric Alloys.
basic_science · Level V
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- Record sourced from PubMed, PMID 28737233.
- Also identified by DOI 10.1002/adma.201702091.
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Abstract
Structural defects often dominate the electronic- and thermal-transport properties of thermoelectric (TE) materials and are thus a central ingredient for improving their performance. However, understanding the relationship between TE performance and the disordered atomic defects that are generally inherent in nanostructured alloys remains a challenge. Herein, the use of scanning transmission electron microscopy to visualize atomic defects directly is described and disordered atomic-scale defects are demonstrated to be responsible for the enhancement of TE performance in nanostructured Ti<sub>1-</sub><sub>x</sub> Hf<sub>x</sub> NiSn<sub>1-</sub><sub>y</sub> Sb<sub>y</sub> half-Heusler alloys. The disordered defects at all atomic sites induce a local composition fluctuation, effectively scattering phonons and improving the power factor. It is observed that the Ni interstitial and Ti,Hf/Sn antisite defects are collectively formed, leading to significant atomic disorder that causes the additional reduction of lattice thermal conductivity. The Ti<sub>1-</sub><sub>x</sub> Hf<sub>x</sub> NiSn<sub>1-</sub><sub>y</sub> Sb<sub>y</sub> alloys containing inherent atomic-scale defect disorders are produced in one hour by a newly developed process of temperature-regulated rapid solidification followed by sintering. The collective atomic-scale defect disorder improves the zT to 1.09 ± 0.12 at 800 K for the Ti<sub>0.5</sub> Hf<sub>0.5</sub> NiSn<sub>0.98</sub> Sb<sub>0.02</sub> alloy. These results provide a promising avenue for improving the TE performance of state-of-the-art materials.