Department of Physics, Tarbiat Modares University, Tehran, Iran.
J Phys Condens Matter. 2010 Jun 30;22(25):255301. doi: 10.1088/0953-8984/22/25/255301. Epub 2010 Jun 10.
The influence of local magnetic moment formation around three kinds of vacancies on the electron conduction through metallic single-wall carbon nanotubes is studied by use of the Landauer formalism within the coherent regime. The method is based on the single-band tight-binding Hamiltonian, a surface Green function calculation, and the mean-field Hubbard model. The numerical results show that the electronic transport is spin polarized due to the localized magnetic moments and it is strongly dependent on the geometry of the vacancies. For all kinds of vacancies, by including the effects of local magnetic moments the electron scattering increases with respect to the nonmagnetic vacancies case and, hence, the current-voltage characteristic of the system changes. In addition, a high value for the electron spin polarization can be obtained by applying a suitable gate voltage.
通过使用相干态下的 Landauer 形式主义,研究了三种空位周围局部磁矩形成对金属单壁碳纳米管中电子传导的影响。该方法基于单能带紧束缚哈密顿量、表面格林函数计算和平均场 Hubbard 模型。数值结果表明,由于局域磁矩的存在,电子输运是自旋极化的,并且它强烈依赖于空位的几何形状。对于所有类型的空位,通过包含局域磁矩的影响,与非磁性空位情况相比,电子散射增加,因此系统的电流-电压特性发生变化。此外,通过施加适当的栅极电压可以获得高的电子自旋极化值。