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边缘硼掺杂锯齿形石墨烯纳米带中自旋极化的起源:一种潜在的自旋过滤器。

Origin of spin polarization in an edge boron doped zigzag graphene nanoribbon: a potential spin filter.

作者信息

Chakrabarty Soubhik, Wasey A H M Abdul, Thapa Ranjit, Das G P

机构信息

Department of Materials Science, Indian Association for the Cultivation of Science, Jadavpur, Kolkata-700032, India.

出版信息

Nanotechnology. 2018 Aug 24;29(34):345203. doi: 10.1088/1361-6528/aac9f3. Epub 2018 Jun 4.

Abstract

To realize a graphene based spintronic device, the prime challenge is to control the electronic structure of edges. In this work we find the origin of the spin filtering property in edge boron doped zigzag graphene nanoribbons (ZGNRs) and provide a guide to preparing a graphene based next-generation spin filter based device. Here, we unveil the role of orbitals (p-electron) to tune the electronic, magnetic and transport properties of edge B doped ZGNRs. When all the edge carbon atoms at one of the edges of ZGNRs are replaced by B (100% edge B doping), the system undergoes a semiconductor to metal transition. The role of passivation of the edge with single/double atomic hydrogen on the electronic properties and its relation with the p-electron is correlated in-depth. 50% edge B doped ZGNRs (50% of the edge C atoms at one of the edges are replaced by B) also show half-metallicity when the doped edge is left unpassivated. The half-metallic systems show 100% spin filtering efficiency for a wide range of bias voltages. Zero-bias transmission function of the other configurations shows asymmetric behavior for the up and down spin channels, thereby indicating their possible application potential in nano-spintronics.

摘要

要实现基于石墨烯的自旋电子器件,首要挑战在于控制边缘的电子结构。在这项工作中,我们发现了边缘硼掺杂锯齿形石墨烯纳米带(ZGNRs)中自旋过滤特性的起源,并为制备基于石墨烯的下一代自旋过滤器件提供了指导。在这里,我们揭示了轨道(p电子)在调节边缘B掺杂ZGNRs的电子、磁和输运性质方面的作用。当ZGNRs其中一条边缘上的所有边缘碳原子都被B取代(100%边缘B掺杂)时,系统会发生从半导体到金属的转变。深入关联了单/双原子氢对边缘的钝化作用对电子性质的影响及其与p电子的关系。当掺杂边缘未被钝化时,50%边缘B掺杂的ZGNRs(其中一条边缘上50%的边缘C原子被B取代)也表现出半金属性。半金属系统在很宽的偏置电压范围内显示出100%的自旋过滤效率。其他构型的零偏置传输函数对自旋向上和向下通道表现出不对称行为,从而表明它们在纳米自旋电子学中的潜在应用潜力。

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