论文标题

生命值超导体中的可调涡流Majora零模式

Tunable vortex Majorana zero modes in LiFeAs superconductor

论文作者

Kong, Lingyuan, Cao, Lu, Zhu, Shiyu, Papaj, Michał, Dai, Guangyang, Li, Geng, Fan, Peng, Liu, Wenyao, Yang, Fazhi, Wang, Xiancheng, Du, Shixuan, Jin, Changqing, Fu, Liang, Gao, Hong-Jun, Ding, Hong

论文摘要

基于铁的超导体(FESC)涡流中原始主要零模式(MZM)的最新实现为长期易于断层的量子计算提供了一个有希望的平台。 MZM和最低激发之间的巨大拓扑间隙启用了这些材料中涡流MZM的详细表征。尽管取得了这些成就,但在这个新的Majorana平台中,基于MZM编织的拓扑量子计算的实际实施仍然难以捉摸。最紧迫的问题之一是缺乏用于涡旋MZM的可控调整方法和在编织过程中破坏MZM的FESC Majorana化合物的不均匀性。因此,在化学计量组成和电荷中性切割表面的真正均匀化合物中实现可调涡流MZM是非常需要的。在这里,我们在实验上证明了化学计量超导体生命值是克服这两个障碍的好候选者。使用扫描隧道显微镜,我们发现自然表面上不存在的MZM可以出现在受天然杂质影响的涡旋中。我们的详细分析和模型计算阐明了该材料中MZM出现的机理,通过可控方法(例如静电门控)铺平了一种方法。这种均质材料中MZM的可调性提供了一个空前的平台来操纵和编织MZM,这是拓扑量子计算的重要成分。

The recent realization of pristine Majorana zero modes (MZMs) in vortices of iron-based superconductors (FeSCs) provides a promising platform for long-sought-after fault-tolerant quantum computation. A large topological gap between the MZMs and the lowest excitations enabled detailed characterization of vortex MZMs in those materials. Despite those achievements, a practical implementation of topological quantum computation based on MZM braiding remains elusive in this new Majorana platform. Among the most pressing issues are the lack of controllable tuning methods for vortex MZMs and inhomogeneity of the FeSC Majorana compounds that destroys MZMs during the braiding process. Thus, the realization of tunable vortex MZMs in a truly homogeneous compound of stoichiometric composition and with a charge neutral cleavage surface is highly desirable. Here we demonstrate experimentally that the stoichiometric superconductor LiFeAs is a good candidate to overcome these two obstacles. Using scanning tunneling microscopy, we discover that the MZMs, which are absent on the natural surface, can appear in vortices influenced by native impurities. Our detailed analysis and model calculations clarify the mechanism of emergence of MZMs in this material, paving a way towards MZMs tunable by controllable methods such as electrostatic gating. The tunability of MZMs in this homogeneous material offers an unprecedented platform to manipulate and braid MZMs, the essential ingredients for topological quantum computation.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源