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Scattering states of a vortex in the proximity-induced superconducting state at the interface of a topological insulator and an s-wave superconductor

机译:拓扑绝缘体与s波超导体的界面处的涡旋散射态

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We consider an isolated vortex in the two-dimensional proximity-induced superconducting state formed at the interface of a three-dimensional strong topological insulator (TI) and an s-wave superconductor. Prior calculations of the bound states of this system famously revealed a zero-energy state that is its own conjugate, a Majorana fermion bound to the vortex core. We calculate, not the bound states, but the scattering states of this system, and ask how the spin-momentum-locked massless Dirac form of the single-particle Hamiltonian, inherited from the TI surface, affects the cross section for scattering Bogoliubov quasiparticles from the vortex. As in the case of an ordinary superconductor, this is a two-channel problem with the vortex mixing particlelike and holelike excitations. As in the ordinary case, the same-channel differential cross section diverges in the forward direction due to the Aharonov-Bohm effect, resulting in an infinite total cross section but finite transport and skew cross sections. We calculate the transport and skew cross sections numerically, via a partial wave analysis, as a function of both quasiparticle excitation energy and chemical potential. Novel effects emerge as particlelike or holelike excitations are tuned through the Dirac point.
机译:我们考虑在三维强拓扑绝缘体(TI)和s波超导体的界面处形成的二维邻近感应超导状态中的孤立涡旋。对该系统的束缚态的先前计算著名地揭示了零能量态,它是其自身的共轭物,即绑定到涡旋核的马约拉那费米子。我们计算的不是系统的束缚态,而是散射态,并询问自TI表面继承的单粒子哈密顿量的自旋动量锁无质量Dirac形式如何影响散射Bogoliubov准粒子的截面旋涡。像普通的超导体一样,这是一个涡旋混合颗粒状和空穴状激发的两通道问题。与普通情况一样,由于Aharonov-Bohm效应,相同通道的差分横截面在正向方向上发散,导致总横截面无限大,但传输横截面和偏斜横截面却有限。通过部分波分析,我们根据准粒子激发能和化学势来数值计算传输截面和偏斜截面。通过狄拉克点调整类粒子或类孔的激发,出现了新颖的效果。

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