论文标题

在超导体上的抗铁磁链中的主要模式的定位增加

Increased localization of Majorana modes in antiferromagnetic chains on superconductors

论文作者

Crawford, Daniel, Mascot, Eric, Shimizu, Makoto, Wiesendanger, Roland, Morr, Dirk K., Jeschke, Harald O., Rachel, Stephan

论文摘要

磁铁杂种混合动力车(MSH)系统是定制设计拓扑超导体的关键平台。理想情况下,一维MSH结构的末端将托管Majorana零模型(MZMS),这是拓扑量子计算的基本单元。但是,某些使用铁磁链的实验显示出更为复杂的情况。由于差距很小,因此MZMS可能会杂交并失去其拓扑保护。在尼伯族表面上的最新实验表明,铁磁性和抗铁磁链都可以设计,并且磁性顺序取决于链的晶体学方向。虽然众所周知的铁链链,但抗铁磁链却较少。在这里,我们研究了受Niobium表面启发的两个模型:一种最小模型,以阐明抗铁磁链的一般拓扑特性,以及一个扩展模型,以模仿接近性效应,以更紧密地模拟真实系统。我们发现,对于抗铁磁链来说,拓扑间隙大于铁磁链的间隙大,因此相干性长度对于抗磁链链短,在这些链中产生了MZM的更为明显的定位。虽然铁磁和抗铁磁链的拓扑相都取决于ADATOM的磁矩和化学势,但我们发现抗磁磁链也对Rashba旋转的轨道在表面上偶联的幅度也有很强的依赖性。

Magnet-superconductor hybrid (MSH) systems are a key platform for custom-designed topological superconductors. Ideally, the ends of a one-dimensional MSH structure will host Majorana zero-modes (MZMs), the fundamental unit of topological quantum computing. However, some of the experiments with ferromagnetic chains show a more complicated picture. Due to tiny gap sizes and hence long coherence lengths MZMs might hybridize and lose their topological protection. Recent experiments on a niobium surface have shown that both ferromagnetic and antiferromagnetic chains may be engineered, with the magnetic order depending on the crystallographic direction of the chain. While ferromagnetic chains are well understood, antiferromagnetic chains are less so. Here we study two models inspired by the niobium surface: a minimal model to elucidate the general topological properties of antiferromagnetic chains, and an extended model to more closely simulate a real system by mimicking the proximity effect. We find that in general for antiferromagnetic chains the topological gap is larger than for ferromagnetic ones and thus coherence lengths are shorter for antiferromagnetic chains, yielding more pronounced localization of MZMs in these chains. While topological phases for both ferromagnetic and antiferromagnetic chains both depend on the magnetic moment of the adatoms and the chemical potential, we find that antiferromagnetic chains also have a strong dependence on the magnitude of Rashba spin-orbit coupling at the surface.

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