English

Tailoring light holes in $\beta$-$Ga_{2}O_{3}$ via Anion-Anion Antibonding Coupling

Materials Science 2025-01-15 v2 Computational Physics

Abstract

A significant limitation of wide-bandgap materials is their low hole mobility related to localized holes with heavy effective masses (mhm_h^*). We identify in low-symmetric wide-bandgap compounds an anion-anion antibonding coupling (AAAC) effect as the intrinsic factor behind hole localization, which explains the extremely heavy mhm_h^* and self-trapped hole (STH) formation observed in gallium oxide (β\beta-Ga2O3Ga_{2}O_{3}). We propose a design principle for achieving light holes by manipulating AAAC, demonstrating that specific strain conditions can reduce mhm_h^* in β\beta-Ga2O3Ga_{2}O_{3} from 4.77 m0m_0 to 0.38 m0m_0, making it comparable to the electron mass (0.28 m0m_0), while also slightly suppresses the formation of self-trapped holes, evidenced by the reduction in the formation energy of hole polarons from -0.57 eV to -0.45 eV under tensile strain. The light holes show significant anisotropy, potentially enabling two-dimensional transport in bulk material. This study provides a fundamental understanding of hole mass enhancement and STH formation in novel wide-bandgap materials and suggest new pathways for engineering hole mobilities.

Keywords

Cite

@article{arxiv.2408.08716,
  title  = {Tailoring light holes in $\beta$-$Ga_{2}O_{3}$ via Anion-Anion Antibonding Coupling},
  author = {Ke Xu and Qiaolin Yang and Wenhao Liu and Rong Zhang and Zhi Wang and Jiandong Ye},
  journal= {arXiv preprint arXiv:2408.08716},
  year   = {2025}
}

Comments

23 pages, 1 table, 5 figures