Guo Qilin, Dedkov Yuriy, Voloshina Elena
Department of Physics, Shanghai University, Shangda Road 99, Shanghai, 200444, China.
Sci Rep. 2020 Dec 10;10(1):21684. doi: 10.1038/s41598-020-78583-w.
The effect of Mn intercalation on the atomic, electronic and magnetic structure of the graphene/Cu(111) interface is studied using state-of-the-art density functional theory calculations. Different structural models of the graphene-Mn-Cu(111) interface are investigated. While a Mn monolayer placed between graphene and Cu(111) (an unfavorable configuration) yields massive rearrangement of the graphene-derived [Formula: see text] bands in the vicinity of the Fermi level, the possible formation of a [Formula: see text]Mn alloy at the interface (a favorable configuration) preserves the linear dispersion for these bands. The deep analysis of the electronic states around the Dirac point for the graphene/[Formula: see text]Mn/Cu(111) system allows to discriminate between contributions from three carbon sublattices of a graphene layer in this system and to explain the bands' as well as spins' topology of the electronic states around the Fermi level.
利用最先进的密度泛函理论计算方法,研究了锰插层对石墨烯/Cu(111)界面的原子结构、电子结构和磁结构的影响。研究了石墨烯-Mn-Cu(111)界面的不同结构模型。虽然置于石墨烯和Cu(111)之间的单层锰(一种不利构型)会使费米能级附近源自石墨烯的π*能带发生大量重排,但界面处可能形成的MnCu合金(一种有利构型)会使这些能带保持线性色散。对石墨烯/MnCu/Cu(111)体系狄拉克点周围电子态的深入分析,有助于区分该体系中石墨烯层三个碳原子子晶格的贡献,并解释费米能级附近电子态的能带拓扑和自旋拓扑。