English

Band Alignment in Quantum Wells from Automatically Tuned DFT+$U$

Materials Science 2019-03-12 v1

Abstract

Band alignment between two materials is of fundamental importance for multitude of applications. However, density functional theory (DFT) either underestimates the bandgap - as is the case with local density approximation (LDA) or generalized gradient approximation (GGA) - or is highly computationally demanding, as is the case with hybrid-functional methods. The latter can become prohibitive in electronic-structure calculations of supercells which describe quantum wells. We propose to apply the DFT+U+U method, with UU for each atomic shell being treated as set of tuning parameters, to automatically fit the bulk bandgap and the lattice constant, and then use thus obtained UU parameters in large supercell calculations to determine the band alignment. We apply this procedure to InP/In0.5_{0.5}Ga0.5_{0.5}As, In0.5_{0.5}Ga0.5_{0.5}As/In0.5_{0.5}Al0.5_{0.5}As and InP/In0.5_{0.5}Al0.5_{0.5}As quantum wells, and obtain good agreement with experimental results. Although this procedure requires some experimental input, it provides both meaningful valence and conduction band offsets while, crucially, lattice relaxation is taken into account. The computational cost of this procedure is comparable to that of LDA. We believe that this is a practical procedure that can be useful for providing accurate estimate of band alignments between more complicated alloys.

Keywords

Cite

@article{arxiv.1805.00455,
  title  = {Band Alignment in Quantum Wells from Automatically Tuned DFT+$U$},
  author = {Grigory Kolesov and Chungwei Lin and Andrew Knyazev and Keisuke Kojima and Joseph Katz and Koichi Akiyama and Eiji Nakai and Hiroyuki Kawahara},
  journal= {arXiv preprint arXiv:1805.00455},
  year   = {2019}
}

Comments

16 pages, 4 figures

R2 v1 2026-06-23T01:41:55.583Z