English

Single-Molecule Magnet Mn$_{12}$ on GaAs-supported Graphene: Gate Field Effects From First Principles

Materials Science 2022-01-05 v2 Mesoscale and Nanoscale Physics

Abstract

We study gate field effects on the Mn12_{12}O12_{12}(COOH)16_{16}(H2_2O)4_4 | graphene | GaAs heterostructure via first-principles calculations. We find that under moderate doping levels electrons can be added to but not taken from the single-molecule magnet Mn12_{12}O12_{12}(COOH)16_{16}(H2_2O)4_4 (Mn12_{12}). The magnetic anisotropy energy (MAE) of Mn12_{12} decreases as the electron doping level increases, due to electron transfer from graphene to Mn12_{12} and change in the band alignment between Mn12_{12} and graphene. At an electron doping level of 5.00×1013cm2-5.00 \times 10^{13}\, \textrm{cm}^{-2}, the MAE decreases by about 18% compared with zero doping. The band alignment between graphene and GaAs is more sensitive to electron doping than to hole doping since the valence band of GaAs is close to the Fermi level. The GaAs substrate induces a small bandgap in the supported graphene under the zero gate field and a nearly strain-free configuration. Finally, we propose a vertical tunnel junction for probing the gate dependence of MAE via electron transport measurements.

Keywords

Cite

@article{arxiv.2011.07576,
  title  = {Single-Molecule Magnet Mn$_{12}$ on GaAs-supported Graphene: Gate Field Effects From First Principles},
  author = {Shuanglong Liu and Maher Yazback and James N. Fry and Xiao-Guang Zhang and Hai-Ping Cheng},
  journal= {arXiv preprint arXiv:2011.07576},
  year   = {2022}
}
R2 v1 2026-06-23T20:14:45.508Z