English

Half-Heusler thermoelectric materials: NMR studies

Materials Science 2020-08-11 v1

Abstract

We report 59^{59}Co, 93^{93}Nb, and 121^{121}Sb nuclear magnetic resonance (NMR) measurements combined with density functional theory (DFT) calculations on a series of half-Heusler semiconductors, including NbCoSn, ZrCoSb, TaFeSb and NbFeSb, to better understand their electronic properties and general composition-dependent trends. These materials are of interest as potentially high efficiency thermoelectric materials. Compared to the other materials, we find that ZrCoSb tends to have a relatively large amount of local disorder, apparently antisite defects. This contributes to a small excitation gap corresponding to an impurity band near the band edge. In NbCoSn and TaFeSb, Curie-Weiss-type behavior is revealed, which indicates a small density of interacting paramagnetic defects. Very large paramagnetic chemical shifts are observed associated with a Van Vleck mechanism due to closely spaced dd bands splitting between the conduction and valence bands. Meanwhile, DFT methods were generally successful in reproducing the chemical shift trend for these half-Heusler materials, and we identify an enhancement of the larger-magnitude shifts, which we connect to electron interaction effects. The general trend is connected to changes in dd-electron hybridization across the series.

Keywords

Cite

@article{arxiv.2006.02013,
  title  = {Half-Heusler thermoelectric materials: NMR studies},
  author = {Yefan Tian and Nader Ghassemi and Wuyang Ren and Zhu Hangtian and Shan Li and Qian Zhang and Zhiming Wang and Zhifeng Ren and Joseph H. Ross},
  journal= {arXiv preprint arXiv:2006.02013},
  year   = {2020}
}

Comments

22 pages, 6 figures

R2 v1 2026-06-23T16:00:50.894Z