English

Ternary Wide Band Gap Oxides for High-Power Electronics Identified Computationally

Materials Science 2022-04-21 v1

Abstract

As electricity grids become more renewable energy-compliant, there will be a need for novel semiconductors that can withstand high power, high voltage, and high temperatures. Wide band gap (WBG) semiconductors tend to exhibit large breakdown field, allowing high operating voltages. Currently explored WBG materials for power electronics are costly (GaN), difficult to synthesize as high-quality single crystals (SiC) and at scale (diamond, BN), have low thermal conductivity (β\beta-Ga2_2O3_3), or cannot be suitably doped (AlN). We conduct a computational search for novel semiconductors across 1,340 known metal-oxides using first-principles calculations and existing transport models. We calculate the Baliga figure of merit (BFOM) and lattice thermal conductivity (κL\kappa_L) to identify top candidates for n-type power electronics. We find 40 mostly ternary oxides that have higher κL\kappa_L than β\beta-Ga2_2O3_3 and higher n-type BFOM than SiC and GaN. Among these, several material classes emerge, including 2-2-7 stoichiometry thortveitites and pyrochlores, II-IV spinels, and calcite-type borates. Within these classes, we propose In2_2Ge2_2O7_7, Mg2_2GeO4_4, and InBO3_3 as they are the most favorable for n-type doping based on our preliminary evaluation and could be grown as single crystals or thin film heterostructures. These materials could help advance power electronic devices for the future grid.

Keywords

Cite

@article{arxiv.2204.09158,
  title  = {Ternary Wide Band Gap Oxides for High-Power Electronics Identified Computationally},
  author = {Emily McDonald Garrity and Cheng-Wei Lee and Prashun Gorai and Brooks Tellekamp and Andriy Zakutayev and Vladan Stevanović},
  journal= {arXiv preprint arXiv:2204.09158},
  year   = {2022}
}

Comments

17 pages, 8 figures, submitted to and in-review at Physical Review X Energy

R2 v1 2026-06-24T10:52:40.161Z