论文标题
超导FE(SE,TE)/BI2TE3中的单层胶片中牢固签名的S波订单参数的证据3
Evidence for a robust sign-changing s-wave order parameter in monolayer films of superconducting Fe (Se,Te)/Bi2Te3
论文作者
论文摘要
基于FE的超导体FE(SE,TE)将非平凡的拓扑结合在一起,非常规超导性,并且可能是实现诸如高阶拓扑角模式和Majora Modarana模式之类的异国情调状态的理想平台。 Fe(SE,TE)的薄膜对于设备制造,相位敏感的传输测量以及实现工程师高阶模式的建议很重要。但是,尽管批量Fe(SE,TE)已通过多种技术进行了广泛的研究,但尚未探索单层极限中超导顺序参数的性质。在这项工作中,我们在BI2TE3上研究了Fe(SE,TE)的单层膜,并使用扫描隧道光谱和Bogoliubov Quasiparticle Interference(BQPI)研究。我们发现,单层FE(SE,TE)/BI2TE3异质结构具有强大的多层超导状态,与散装非常相似。间隙能量的BQPI图显示出强烈的空间调制,定向45度与FE-SE键方向。对相引用的准粒子干扰信号的分析揭示了类似于大体的S-波阶参数。此外,我们观察到BQPI信号中符号变化的独特模式,该模式在整体中尚未观察到。我们的工作确立了单层FE(SE,TE)/BI2TE3作为强大的多波段非常规超导体,并为在这个高度可调的系统中探索了非客气拓扑的阶段。
The Fe-based superconductor Fe (Se,Te) combines non-trivial topology with unconventional superconductivity and may be an ideal platform to realize exotic states such as high-order topological corner modes and Majorana modes. Thin films of Fe (Se,Te) are important for device fabrication, phase sensitive transport measurements and for realizing proposals to engineer higher-order modes. However, while bulk Fe (Se,Te) has been extensively studied with a variety of techniques, the nature of the superconducting order parameter in the monolayer limit has not yet been explored. In this work, we study monolayer films of Fe (Se,Te) on Bi2Te3 with scanning tunneling spectroscopy and Bogoliubov quasiparticle interference (BQPI). We discover that the monolayer Fe (Se,Te)/Bi2Te3 heterostructures host a robust, multigap superconducting state that strongly resembles the bulk. BQPI maps at the gap energies show a strong spatial modulation, oriented 45 degrees to the Fe-Se bond direction. Analysis of the phase-referenced quasiparticle interference signal reveals a sign-changing s-wave order parameter similar to the bulk. Moreover, we observe a unique pattern of sign changes in the BQPI signal which have not been observed in the bulk. Our work establishes monolayer Fe (Se,Te)/Bi2Te3 as a robust multi-band unconventional superconductor and sets the stage for explorations of non-trivial topology in this highly-tunable system.