论文标题

基于2DEG的杂化连接磁性的拓扑阶段的实验证据

Experimental evidence for topological phases in the magnetoconductance of 2DEG-based hybrid junctions

论文作者

Delfanazari, Kaveh, Serra, Llorenc, Ma, Pengcheng, Puddy, Reuben K., Yi, Teng, Cao, Moda, Gul, Yilmaz, Farrer, Ian, Ritchie, David A., Joyce, Hannah J., Kelly, Michael J., Smith, Charles G.

论文摘要

到目前为止,虽然平面外磁场的应用对人为工程的杂交超导超导 - 通用连接的形成是有害的,但最近的一些理论研究确实发现在确定此类拓扑阶段1-5中确实有用。 Majorana阶段作为基于二维电子气体(2DEG)在完全偏外的磁场下的杂化连接仪的磁性中量化的量子。 2DEG中的大型横向Rashba自旋轨道相互作用以及强大的磁轨道效应产生了拓扑相变,向具有主要模式的非平凡相。这样的主要模式是在基于2DEG的电线的末端形成的,具有混合超导体 - 轴向导体完整性。在这里,我们根据In0.75Ga0.25AS 2DEG报告了对约瑟夫森连接中此类拓扑阶段的实验性观察,它通过扫除了较小至0 <b(mt)<100的平面外磁场,并探测电导率并探测该特征性量化量化磁强度的磁力量。我们在平面外磁场中创建和检测(i)创建和检测拓扑阶段的方法,以及(ii)在单个芯片上将一系列拓扑结合的约瑟夫森连接组合在单个芯片上,以开发可扩展的量子集成电路,以在其在故障耐受量的量子处理和计算中的潜在应用来开发其潜在的应用。

While the application of out-of-plane magnetic fields was, so far, believed to be detrimental for the formation of Majorana phases in artificially engineered hybrid superconducting-semiconducting junctions, several recent theoretical studies have found it indeed useful in establishing such topological phases 1-5. Majorana phases emerge as quantized plateaus in the magnetoconductance of the hybrid junctions based on two-dimensional electron gases (2DEG) under fully out-of-plane magnetic fields. The large transverse Rashba spin-orbit interaction in 2DEG, together with a strong magneto-orbital effect, yield topological phase transitions to nontrivial phases hosting Majorana modes. Such Majorana modes are formed at the ends of 2DEG-based wires with a hybrid superconductor-semiconductor integrity. Here, we report on the experimental observation of such topological phases in Josephson junctions, based on In0.75Ga0.25As 2DEG, by sweeping out-of-plane magnetic fields of as small as 0 < B(mT) < 100 and probing the conductance to highlight the characteristic quantized magnetoconductance plateaus. Our approaches towards (i) creation and detection of topological phases in small out-of-plane magnetic fields, and (ii) integration of an array of topological Josephson junctions on a single chip pave the ways for the development of scalable quantum integrated circuits for their potential applications in fault-tolerant quantum processing and computing.

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