Yuan P F, Zhang Z H, Fan Z Q, Qiu M
Institute of Nanomaterial & Nanostructure, Changsha University of Science and Technology, Changsha 410114, China.
Phys Chem Chem Phys. 2017 Apr 5;19(14):9528-9536. doi: 10.1039/c7cp00029d.
2D penta-graphene sheets were cut along typical crystallographic orientations in order to construct various penta-graphene nanoribbon (P-GNR) models, and their electronic structures and magnetic properties were systemically investigated. It was demonstrated that P-GNRs are very versatile with rich and unique electronic and magnetic properties. In particular, bipolar magnetic semiconducting features can be achieved in the ferromagnetic state for all magnetic P-GNRs, which makes P-GNRs valuable for developing next-generation information storage devices. More interestingly, studies on the electric-magnetic coupling revealed that an applied transverse electric field can transform a P-GNR from a magnetic semiconductor to a half-metal with a wide band gap of 0.88 eV, which can achieve complete spin filtering even at room temperature. Important advantages of magnetism over graphene nanoribbons are thus expected.
为构建各种五边形石墨烯纳米带(P-GNR)模型,沿典型晶体学取向切割二维五边形石墨烯片,并对其电子结构和磁性进行了系统研究。结果表明,P-GNR具有丰富而独特的电子和磁性,非常通用。特别是,所有磁性P-GNR在铁磁状态下都能实现双极磁半导体特性,这使得P-GNR对于开发下一代信息存储设备具有重要价值。更有趣的是,对电磁耦合的研究表明,施加横向电场可使P-GNR从磁半导体转变为具有0.88 eV宽带隙的半金属,即使在室温下也能实现完全自旋过滤。因此,预计磁性相对于石墨烯纳米带具有重要优势。