Key Laboratory of Strongly-Coupled Quantum Matter Physics, Chinese Academy of Sciences, and Department of Physics, University of Science and Technology of China, Hefei, Anhui 230026, China.
Phys Chem Chem Phys. 2018 Jun 13;20(23):15871-15875. doi: 10.1039/c8cp02361a.
The geometric, electronic and magnetic properties of a nitric oxide (NO) adsorbed Fe3O4(100) surface have been investigated using density functional theory (DFT) calculations. NO molecules preferentially bond with surface Fe(B) atoms via their N atoms. The generalized gradient approximation (GGA) is not recommended to be used in such a strongly correlated system since it provides not only an overestimation of the adsorption energy and an underestimation of the Fe(B)-N bond length, but also magnetic quenching of the adsorbate and the bonded Fe(B) atoms. In contrast, a tilted geometry and magnetization of the adsorbate and the bonded Fe(B) atom are obtained after including the strong on-site Coulomb interactions through a Hubbard term (GGA+U). The spin-down 2π* states of the NO molecule are filled and broadened due to the adsorbate-substrate interaction and the molecule-molecule interaction. The surface spin polarization close to the Fermi level is expected to be greatly enhanced by the NO adsorption which has significance for interface design in spintronic devices.
利用密度泛函理论(DFT)计算研究了吸附在 Fe3O4(100)表面的一氧化氮(NO)的几何、电子和磁性质。NO 分子通过其 N 原子优先与表面 Fe(B)原子键合。由于广义梯度近似(GGA)不仅高估了吸附能和低估了 Fe(B)-N 键长,还使吸附物和键合的 Fe(B)原子的磁性猝灭,因此不建议在这种强关联系统中使用 GGA。相反,通过 Hubbard 项(GGA+U)包含强局域库仑相互作用后,得到了吸附物和键合的 Fe(B)原子的倾斜几何形状和磁化。NO 分子的自旋向下 2π* 态由于吸附物-衬底相互作用和分子-分子相互作用而被填满和展宽。NO 吸附有望大大增强表面自旋极化,这对于自旋电子器件中的界面设计具有重要意义。