English

Range-Separated Hybrid Functionals for Mixed-Dimensional Heterojunctions: Application to Phthalocyanines/MoS2

Materials Science 2024-06-12 v3

Abstract

We analyze the electronic structure and level alignment of transition-metal phthalocyanine (MPc) molecules adsorbed on two-dimensional MoS2_2 employing density functional theory (DFT) calculations. We develop a procedure for multi-objective optimal tuning of parameters of range-separated hybrid functionals in these mixed-dimensional systems. Using this procedure, which leads to the asymptotically-correct exchange-correlation potential between molecule and two-dimensional material, we obtain electronic structures consistent with experimental photoemission results for both energy level alignment and electronic bandgaps, representing a significant advance compared to standard DFT methods. We elucidate the MoS2_2 valence resonance with the transition-metal phthalocyanine non-frontier 3dd orbitals and its dependence on the transition metal atomic number. Based on our calculations, we derive parameter-free, model self-energy corrections that quantitatively accounts for the effects of the heterogeneous dielectric environment on the electronic structure of these mixed-dimensional heterojunctions.

Keywords

Cite

@article{arxiv.2107.08516,
  title  = {Range-Separated Hybrid Functionals for Mixed-Dimensional Heterojunctions: Application to Phthalocyanines/MoS2},
  author = {Qunfei Zhou and Zhen-Fei Liu and Tobin J. Marks and Pierre Darancet},
  journal= {arXiv preprint arXiv:2107.08516},
  year   = {2024}
}
R2 v1 2026-06-24T04:18:04.626Z