English

Double-Rashba materials for nanocrystals with bright ground-state excitons

Materials Science 2024-08-02 v1

Abstract

While nanoscale semiconductor crystallites provide versatile fluorescent materials for light-emitting devices, such nanocrystals suffer from the "dark exciton"\unicodex2014\unicode{x2014}an optically inactive electronic state into which the nanocrystal relaxes before emitting. Recently, a theoretical mechanism was discovered that can potentially defeat the dark exciton. The Rashba effect can invert the order of the lowest-lying levels, creating a bright excitonic ground state. To identify materials that exhibit this behavior, here we perform an extensive high-throughput computational search of two large open-source materials databases. Based on a detailed understanding of the Rashba mechanism, we define proxy criteria and screen over 500,000 solids, generating 173 potential "bright-exciton" materials. We then refine this list with higher-level first-principles calculations to obtain 28 candidates. To confirm the potential of these compounds, we select five and develop detailed effective-mass models to determine the nature of their lowest-energy excitonic state. We find that four of the five solids (BiTeCl, BiTeI, Ga2_2Te3_3, and KIO3_3) can yield bright ground-state excitons. Our approach thus reveals promising materials for future experimental investigation of bright-exciton nanocrystals.

Keywords

Cite

@article{arxiv.2310.19678,
  title  = {Double-Rashba materials for nanocrystals with bright ground-state excitons},
  author = {Michael W. Swift and Peter C. Sercel and Alexander L. Efros and John L. Lyons and David J. Norris},
  journal= {arXiv preprint arXiv:2310.19678},
  year   = {2024}
}

Comments

19 pages, 4 figures