paper

Computationally-driven, high throughput identification of CaTe and LiSb as promising candidates for high mobility -type transparent conducting materials

arXiv:1811.05390 · doi:10.1103/PhysRevMaterials.3.034601

Abstract

High-performance -type transparent conducting materials (TCMs) must exhibit a rare combination of properties including high mobility, transparency and -type dopability. The development of high-mobility/conductivity -type TCMs is necessary for many applications such as solar cells, or transparent electronic devices. Oxides have been traditionally considered as the most promising chemical space to dig out novel -type TCMs. However, non-oxides might perform better than traditional -type TCMs (oxides) in terms of mobility. We report on a high-throughput (HT) computational search for non-oxide -type TCMs from a large dataset of more than 30,000 compounds which identified CaTe and LiSb as very good candidates for high-mobility -type TCMs. From our calculations, both compounds are expected to be -type dopable: intrinsically for LiSb while CaTe would require extrinsic doping. Using electron-phonon computations, we estimate hole mobilities at room-temperature to be about 20 and 70 cm/Vs for CaTe and LiSb, respectively. The computed hole mobility for LiSb is quite exceptional and comparable with the electron mobility in the best -type TCMs.

10 pages, 5 figures