Choi Sangkook, Jeong Byoung Wook, Kim Seungchul, Kim Gunn
School of Physics and Astronomy, FPRD, and Center for Theoretical Physics, Seoul National University, Seoul 151-747, Republic of Korea. Department of Physics, University of California at Berkeley, Berkeley, CA 94720, USA.
J Phys Condens Matter. 2008 Jun 11;20(23):235220. doi: 10.1088/0953-8984/20/23/235220. Epub 2008 May 6.
Vacancy-induced magnetism in graphene bilayers is investigated using spin-polarized density functional theory calculations. One of two graphene layers has a monovacancy. Two atomic configurations for bilayers are considered with respect to the position of the monovacancy. We find that spin magnetic moments localized at the vacancy site decrease by ∼10% for our two configurations, compared with the graphene monolayer with a monovacancy. The reduction of the spin magnetic moment in the graphene bilayers is attributed to the interlayer charge transfer from the adjacent layer to the layer with the monovacancy, compensating for spin magnetic moments originating from quasilocalized defect states.
利用自旋极化密度泛函理论计算研究了双层石墨烯中的空位诱导磁性。两层石墨烯中的一层有一个单空位。针对单空位的位置考虑了双层的两种原子构型。我们发现,与具有单空位的石墨烯单层相比,我们的两种构型中位于空位处的自旋磁矩降低了约10%。双层石墨烯中自旋磁矩的降低归因于从相邻层到具有单空位层的层间电荷转移,补偿了源自准局域缺陷态的自旋磁矩。