Department of Physics and Astronomy, University of California, Irvine, California 92697, USA.
Condensed Matter Physics and Materials Science Division (CMPMSD), Brookhaven National Laboratory, Upton, New York 11973, USA.
Phys Rev Lett. 2023 Jan 27;130(4):046702. doi: 10.1103/PhysRevLett.130.046702.
Recently, evidence has emerged in the topological superconductor Fe-chalcogenide FeTe_{1-x}Se_{x} for time-reversal symmetry breaking (TRSB), the nature of which has strong implications on the Majorana zero modes (MZM) discovered in this system. It remains unclear, however, whether the TRSB resides in the topological surface state (TSS) or in the bulk, and whether it is due to an unconventional TRSB superconducting order parameter or an intertwined order. Here, by performing in superconducting FeTe_{1-x}Se_{x} crystals both surface-magneto-optic-Kerr effect measurements using a Sagnac interferometer and bulk magnetic susceptibility measurements, we pinpoint the TRSB to the TSS, where we also detect a Dirac gap. Further, we observe surface TRSB in nonsuperconducting FeTe_{1-x}Se_{x} of nominally identical composition, indicating that TRSB arises from an intertwined surface ferromagnetic (FM) order. The observed surface FM bears striking similarities to the two-dimensional (2D) FM found in 2D van der Waals crystals, and is highly sensitive to the exact chemical composition, thereby providing a means for optimizing the conditions for Majorana particles that are useful for robust quantum computing.
最近,在拓扑超导体 Fe-chalcogenide FeTe_{1-x}Se_{x} 中出现了时间反转对称性破缺(TRSB)的证据,这对在该系统中发现的马约拉纳零模(MZM)的性质具有很强的影响。然而,TRSB 是位于拓扑表面态(TSS)还是体相中,以及它是由于非常规的 TRSB 超导序参量还是相互交织的序参量引起的,目前仍不清楚。在这里,我们通过在超导 FeTe_{1-x}Se_{x}晶体中同时进行超导 FeTe_{1-x}Se_{x}晶体的表面磁光克尔效应测量(使用萨格纳克干涉仪)和体磁化率测量,将 TRSB 确定为 TSS,在那里我们还检测到了狄拉克能隙。此外,我们在名义上相同组成的非超导 FeTe_{1-x}Se_{x}中观察到表面 TRSB,表明 TRSB 源自相互交织的表面铁磁(FM)序。观察到的表面 FM 与在二维(2D)范德瓦尔斯晶体中发现的二维 FM 具有惊人的相似性,并且对精确的化学成分非常敏感,从而为优化用于稳健量子计算的马约拉纳粒子的条件提供了一种手段。