Kan Er-Jun, Wu Xiaojun, Li Zhenyu, Zeng X C, Yang Jinlong, Hou J G
Hefei National Laboratory for Physical Sciences at Microscale, University of Science and Technology of China, Hefei, Anhui 230026, People's Republic of China.
J Chem Phys. 2008 Aug 28;129(8):084712. doi: 10.1063/1.2971187.
The established chemical synthetic strategy toward graphene nanoribbons has greatly prompted and justified the research of theoretical designs of novel materials based on graphene. In this paper, we report the novel half-metallicity in C and BN hybrid zigzag nanoribbons even though stand-alone C or BN nanoribbon possesses a finite band gap. By performing first-principles electronic-structure calculations, we find this unexpected half-metallicity in the hybrid nanostructures stems from a competition between the charge and spin polarizations, as well as from the pi orbital hybridization between C and BN. Molecular dynamics simulations indicate that the hybrid nanoribbons are stable. Our results point out a possibility of making spintronic devices solely based on nanoribbons and a new way of fabricating metal-free half metals.
已确立的石墨烯纳米带化学合成策略极大地推动并证明了基于石墨烯的新型材料理论设计的研究。在本文中,我们报道了C和BN混合锯齿形纳米带中存在的新型半金属性,尽管单独的C或BN纳米带具有有限的带隙。通过进行第一性原理电子结构计算,我们发现这种混合纳米结构中意外的半金属性源于电荷和自旋极化之间的竞争,以及C和BN之间的π轨道杂化。分子动力学模拟表明混合纳米带是稳定的。我们的结果指出了仅基于纳米带制造自旋电子器件的可能性以及制造无金属半金属的新方法。