Departamento de Física de la Materia Condensada, Universidad Autónoma de Madrid, E-28049 Madrid, Spain.
Phys Rev Lett. 2010 Mar 5;104(9):096804. doi: 10.1103/PhysRevLett.104.096804.
Atomic vacancies have a strong impact in the mechanical, electronic, and magnetic properties of graphenelike materials. By artificially generating isolated vacancies on a graphite surface and measuring their local density of states on the atomic scale, we have shown how single vacancies modify the electronic properties of this graphenelike system. Our scanning tunneling microscopy experiments, complemented by tight-binding calculations, reveal the presence of a sharp electronic resonance at the Fermi energy around each single graphite vacancy, which can be associated with the formation of local magnetic moments and implies a dramatic reduction of the charge carriers' mobility. While vacancies in single layer graphene lead to magnetic couplings of arbitrary sign, our results show the possibility of inducing a macroscopic ferrimagnetic state in multilayered graphene just by randomly removing single C atoms.
原子空位对类石墨材料的力学、电子和磁性能有很大的影响。通过在石墨表面人工生成孤立空位,并在原子尺度上测量其局域态密度,我们展示了单个空位如何改变这种类石墨体系的电子性质。我们的扫描隧道显微镜实验,辅以紧束缚计算,揭示了在每个单个石墨空位周围费米能级处存在尖锐的电子共振,这可以与局部磁矩的形成相关联,并意味着载流子迁移率的急剧降低。虽然单层石墨烯中的空位会导致任意符号的磁耦合,但我们的结果表明,通过随机去除单个 C 原子,有可能在多层石墨烯中诱导宏观亚铁磁状态。