论文标题

在Kagome超导体KV3SB5中发现非常规手续费订单

Discovery of unconventional chiral charge order in kagome superconductor KV3Sb5

论文作者

Jiang, Yu-Xiao, Yin, Jia-Xin, Denner, M. Michael, Shumiya, Nana, Ortiz, Brenden R., Xu, Gang, Guguchia, Zurab, He, Junyi, Hossain, Md Shafayat, Liu, Xiaoxiong, Ruff, Jacob, Kautzsch, Linus, Zhang, Songtian S., Chang, Guoqing, Belopolski, Ilya, Zhang, Qi, Cochran, Tyler A., Multer, Daniel, Litskevich, Maksim, Cheng, Zi-Jia, Yang, Xian P., Wang, Ziqiang, Thomale, Ronny, Neupert, Titus, Wilson, Stephen D., Hasan, M. Zahid

论文摘要

交织的量子顺序和非平凡拓扑是在凝结物理学的前沿。已经提出了带有轨道电流的电荷密度波(CDW),作为拓扑材料中量子异常效应的强大资源,以及在层状高温超导体中的隐藏相中的量子异常效应。但是,这种秩序的实验实现是具有挑战性的。在这里,我们使用高分辨率扫描隧道显微镜(STM)在Kagome材料KV3SB5中发现非常规的电荷顺序,具有拓扑带结构和超导地面状态。通过地形和光谱成像,我们观察到一个可靠的2x2超晶格。从光谱上讲,能量差距在费米水平上打开,2x2电荷调制在其实时空间,信号电荷排序中表现出强度逆转。在杂质无限区域,固有电荷调制的强度进一步表现出具有异常磁场反应的手性各向异性。对我们实验的理论分析表明,在沮丧的kagome晶格中具有诱人的非常规手性CDW,这不仅可以带来轨道磁性的巨大异常霍尔效应,而且还可以成为非常规超导性的前体。

Intertwining quantum order and nontrivial topology is at the frontier of condensed matter physics. A charge density wave (CDW) like order with orbital currents has been proposed as a powerful resource for achieving the quantum anomalous Hall effect in topological materials and for the hidden phase in cuprate high-temperature superconductors. However, the experimental realization of such an order is challenging. Here we use high-resolution scanning tunnelling microscopy (STM) to discover an unconventional charge order in a kagome material KV3Sb5, with both a topological band structure and a superconducting ground state. Through both topography and spectroscopic imaging, we observe a robust 2x2 superlattice. Spectroscopically, an energy gap opens at the Fermi level, across which the 2x2 charge modulation exhibits an intensity reversal in real-space, signaling charge ordering. At impurity-pinning free region, the strength of intrinsic charge modulations further exhibits chiral anisotropy with unusual magnetic field response. Theoretical analysis of our experiments suggests a tantalizing unconventional chiral CDW in the frustrated kagome lattice, which can not only lead to large anomalous Hall effect with orbital magnetism, but also be a precursor of unconventional superconductivity.

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