论文标题

通过有限磁场的超导链路介导的自旋量子台之间的远程交换相互作用

Long-range exchange interaction between spin qubits mediated by a superconducting link at finite magnetic field

论文作者

Rosado, Lucia Gonzalez, Hassler, Fabian, Catelani, Gianluigi

论文摘要

固态旋转Qubits由于其较长的相干时间和易于电气操作而实现量子计算机的有希望的候选者。但是,纠缠门所需的自旋旋转相互作用仅具有有限的范围,因为它们通常依赖于相邻的量子点之间的隧道。这严重限制了可伸缩性。扩展相互作用范围的建议通常集中在点之间的相干电子传输或扩展耦合范围。在这里,我们研究了通过使用超导体作为量子介体获得的设置,其中可以获得这样的扩展。由于其间隙,超导体有效地充当了长隧道屏障。我们分析了自旋轨道(SO)耦合,外部磁场和超导体几何形状的影响。我们表明,虽然由于耦合而导致的点和超导体之间的旋转非连接隧道不会影响交换相互作用,但强烈的散射超导体积是有害的。此外,我们发现外部磁场的添加会降低交换相互作用的强度。幸运的是,超导链路的几何形状为优化相互作用范围提供了很大的空间,从2D膜到准1D条的超过数量级。我们估计,对于弱的超导体,耦合(\ textIt {ef。},铝)汇率在微米级范围内最高为100 \,MHz可以在存在的情况下在微米级范围内实现。

Solid state spin qubits are promising candidates for the realization of a quantum computer due to their long coherence times and easy electrical manipulation. However, spin-spin interactions, which are needed for entangling gates, have only limited range as they generally rely on tunneling between neighboring quantum dots. This severely constrains scalability. Proposals to extend the interaction range generally focus on coherent electron transport between dots or on extending the coupling range. Here, we study a setup where such an extension is obtained by using a superconductor as a quantum mediator. Because of its gap, the superconductor effectively acts as a long tunnel barrier. We analyze the impact of spin-orbit (SO) coupling, external magnetic fields, and the geometry of the superconductor. We show that while spin non-conserving tunneling between the dots and the superconductor due to SO coupling does not affect the exchange interaction, strong SO scattering in the superconducting bulk is detrimental. Moreover, we find that the addition of an external magnetic field decreases the strength of the exchange interaction. Fortunately, the geometry of the superconducting link offers a lot of room to optimize the interaction range, with gains of over an order of magnitude from a 2D film to a quasi-1D strip. We estimate that for superconductors with weak SO coupling (\textit{e.g.}, aluminum) exchange rates of up to 100\,MHz over a micron-scale range can be achieved with this setup in the presence of magnetic fields of the order of 100\,mT.

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