English

First-principles carrier mobility and optical absorption of strained ZnO with self-consistent Hubbard interactions

Materials Science 2026-07-31 v1 Strongly Correlated Electrons

Abstract

Carrier mobility and optical absorption are key performance parameters of oxide semiconductors in transparent and flexible displays. We use a newly developed density-functional perturbation theory with a self-consistent Hubbard correction (DFPT+U) to study phonon-limited electron transport and phonon-assisted optical absorption in strained zinc oxide (ZnO). This parameter-free approach accounts for electron-phonon interactions and on-site correlation effects simultaneously. Electronic structures and phonon dispersions are computed under three distinct uniaxial strain directions. Uniaxial tensile strain up to 4.8% along [\bar110] is found to increase the room-temperature electron mobility by 19% while leaving visible-range optical absorption essentially unchanged. These results demonstrate that moderate strain can selectively enhance carrier transport without degrading optical transparency, and establish DFPT+U as an effective framework for predicting strain-dependent transport and optical properties in wide-band-gap oxides with implications for strain-engineered display and optoelectronic applications.

Keywords

Cite

@article{arxiv.2607.29030,
  title  = {First-principles carrier mobility and optical absorption of strained ZnO with self-consistent Hubbard interactions},
  author = {Hong-Guk Min and Wooil Yang and Sabyasachi Tiwari and Feliciano Giustino and Young-Woo Son},
  journal= {arXiv preprint arXiv:2607.29030},
  year   = {2026}
}

Comments

12 pages, 9 figures