论文标题

具有半导体 - 纳米线的拓扑结构约瑟夫森连接

Superconducting islands with semiconductor-nanowire-based topological Josephson junctions

论文作者

Avila, J., Prada, E., San-Jose, P., Aguado, R.

论文摘要

我们理论上基于半导体 - 纳米线约瑟夫森连接,研究超导岛,并考虑到连接频谱中亚级准粒子激发的存在。我们的方法扩展了标准模型的哈密顿量,以进行超导电荷量子标式,并用纳米线交界的Bogoliubov-de Gennes Hamiltonian取代了约瑟夫森电位,该电源预测到了相关的低能子gap子空间。这允许在连接处充分整合子隙级别的相干动力学。形成连接的纳米线中自旋轨道耦合和Zeeman能量的综合作用触发了拓扑过渡,其中子段水平从有限能量的AndeReeve Andreeve绑定到接近零的能量较接近的能源势力状态。控制纳米线交界处的微观能量尺度(约瑟夫森能量,马布拉纳耦合和majoraga能量拆分)与超导岛的充电能量之间的相互作用产生了各种各样的物理状态。基于不同能量尺度的这种相互作用,我们完全表征了连接点的微波响应,从库珀对框到Transmon制度,并展示如何通过不同的光谱特征检测到Mapoaranas的存在。在分开几何形状中,等离子体模式夫妇通过Jaynes-cummings-like相互作用造成了由Majorana杂交产生的相分散子段水平。由于这种相互作用,交界处的高阶等离子体激发继承了Majoraana属性,包括$4π$效应。

We theoretically study superconducting islands based on semiconductor-nanowire Josephson junctions and take into account the presence of subgap quasiparticle excitations in the spectrum of the junction. Our method extends the standard model Hamiltonian for a superconducting charge qubit and replaces the Josephson potential by the Bogoliubov--de Gennes Hamiltonian of the nanowire junction, projected onto the relevant low-energy subgap subspace. This allows to fully incorporate the coherent dynamics of subgap levels in the junction. The combined effect of spin-orbit coupling and Zeeman energy in the nanowires forming the junction triggers a topological transition, where the subgap levels evolve from finite-energy Andreev bound states into near-zero energy Majorana bound states. The interplay between the microscopic energy scales governing the nanowire junction (the Josephson energy, the Majorana coupling and the Majorana energy splitting), with the charging energy of the superconducting island, gives rise to a great variety of physical regimes. Based on this interplay of different energy scales, we fully characterize the microwave response of the junction, from the Cooper pair box to the transmon regimes, and show how the presence of Majoranas can be detected through distinct spectroscopic features. In split-junction geometries, the plasma mode couples to the phase-dispersing subgap levels resulting from Majorana hybridization via a Jaynes--Cummings-like interaction. As a consequence of this interaction, higher order plasma excitations in the junction inherit Majorana properties, including the $4π$ effect.

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