Tepliakov Nikita V, Ma Ruize, Lischner Johannes, Kaxiras Efthimios, Mostofi Arash A, Pizzochero Michele
Departments of Materials and Physics, Imperial College London, London SW7 2AZ, United Kingdom.
The Thomas Young Centre for Theory and Simulation of Materials, Imperial College London, London SW7 2AZ, United Kingdom.
Nano Lett. 2023 Jul 26;23(14):6698-6704. doi: 10.1021/acs.nanolett.3c01940. Epub 2023 Jul 17.
Half-metals have been envisioned as active components in spintronic devices by virtue of their completely spin-polarized electrical currents. Actual materials hosting half-metallic phases, however, remain scarce. Here, we predict that recently fabricated heterojunctions of zigzag nanoribbons embedded in two-dimensional hexagonal boron nitride are half-semimetallic, featuring fully spin-polarized Dirac points at the Fermi level. The half-semimetallicity originates from the transfer of charges from hexagonal boron nitride to the embedded graphene nanoribbon. These charges give rise to opposite energy shifts of the states residing at the two edges, while preserving their intrinsic antiferromagnetic exchange coupling. Upon doping, an antiferromagnetic-to-ferrimagnetic phase transition occurs in these heterojunctions, with the sign of the excess charge controlling the spatial localization of the net magnetic moments. Our findings demonstrate that such heterojunctions realize tunable one-dimensional conducting channels of spin-polarized Dirac fermions seamlessly integrated into a two-dimensional insulator, thus holding promise for the development of carbon-based spintronics.
由于其完全自旋极化的电流,半金属被设想为自旋电子器件中的活性组件。然而,实际存在半金属相的材料仍然稀缺。在这里,我们预测,最近制备的嵌入二维六方氮化硼中的锯齿形纳米带异质结是半半金属性的,在费米能级处具有完全自旋极化的狄拉克点。半半金属性源于电荷从六方氮化硼转移到嵌入的石墨烯纳米带。这些电荷导致位于两条边缘的态发生相反的能量偏移,同时保留其固有的反铁磁交换耦合。掺杂后,这些异质结中会发生反铁磁到亚铁磁的相变,过量电荷的符号控制着净磁矩的空间局域化。我们的研究结果表明,这种异质结实现了自旋极化狄拉克费米子的可调谐一维导电通道,无缝集成到二维绝缘体中,因此有望推动碳基自旋电子学的发展。