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Effective Hamiltonian for surface states of topological insulator nanotubes

机译:拓扑绝缘子纳米管表面态的有效哈密顿量

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摘要

In this work we derive an effective Hamiltonian for the surface states of a hollow topological insulator (TI) nanotube with finite width walls. Unlike a solid TI cylinder, a TI nanotube possesses both an inner as well as outer surface on which the states localized at each surface are coupled together. The curvature along the circumference of the nanotube leads to a spatial variation of the spin orbit interaction field experienced by the charge carriers as well as an asymmetry between the inner and outer surfaces of the nanotube. Both of these features result in terms in the effective Hamiltonian for a TI nanotube absent in that of a flat TI thin film of the same thickness. We calculate the numerical values of the parameters for a Bi2Se3 nanotube as a function of the inner and outer radius, and show that the differing relative magnitudes between the parameters result in qualitatively differing behaviour for the eigenstates of tubes of different dimensions.
机译:在这项工作中,我们得出了具有有限宽度壁的中空拓扑绝缘体(TI)纳米管的表面状态的有效哈密顿量。与固态TI圆柱体不同,TI纳米管同时具有内表面和外表面,位于每个表面上的状态都耦合在一起。沿着纳米管的圆周的曲率导致电荷载流子经历的自旋轨道相互作用场的空间变化以及纳米管的内表面和外表面之间的不对称性。这两个特征都导致有效的哈密顿量,而对于相同厚度的平面TI薄膜则没有有效的TI纳米管。我们计算了Bi2Se3纳米管的参数数值,作为内半径和外半径的函数,结果表明,参数之间相对大小的不同会导致不同尺寸的管的本征态发生质的不同行为。

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