论文标题

高温旋转对称性av3sb5 kagome超导体中的高温旋转对称性相中的单向相干准颗粒

Unidirectional coherent quasiparticles in the high-temperature rotational symmetry broken phase of AV3Sb5 kagome superconductors

论文作者

Li, Hong, Zhao, He, Ortiz, Brenden, Oey, Yuzki, Wang, Ziqiang, Wilson, Stephen D., Zeljkovic, Ilija

论文摘要

kagome金属AV3SB5(在其中a可以代表K,CS或RB)显示相关电子状态的丰富相图,包括超导性和密度波。在该景观中,最近的实验揭示了归因于电子列相的大约35 k的过渡的迹象,该阶段自发破坏了晶格的旋转对称性。在这里,我们表明,旋转对称性破裂会在这些材料的高温下普遍启动,朝着2 x 2电荷密度波转换温度。我们通过光谱成像扫描隧道显微镜和研究AV3SB5家族中几种材料的电子对称性破坏的原子尺度标志:CSV3SB5,KV3SB5和SN-DOPED的CSV3SB5来做到这一点。在大约30 K的温度下,我们测量了准粒子的量子干扰,这是形成相干电子状态的关键特征。这些准颗粒在互惠空间中显示出明显的单向特征,随着超导状态的增强。我们的实验表明,高温旋转对称性断裂和电荷顺序状态通过与连贯的单向单向准颗粒的中等温度策略与超导基态分开。与高温超导体相比,这张图片在现象学上是不同的,它阐明了AV3SB5 kagome超导体中旋转对称性破裂的复杂性质。

Kagome metals AV3Sb5 (where the A can stand for K, Cs, or Rb) display a rich phase diagram of correlated electron states, including superconductivity and density waves. Within this landscape, recent experiments revealed signs of a transition below approximately 35 K attributed to an electronic nematic phase that spontaneously breaks rotational symmetry of the lattice. Here, we show that rotational symmetry breaking initiates universally at a high temperature in these materials, toward the 2 x 2 charge density wave transition temperature. We do this via spectroscopic-imaging scanning tunneling microscopy and study atomic-scale signatures of electronic symmetry breaking across several materials in the AV3Sb5 family: CsV3Sb5, KV3Sb5 and Sn-doped CsV3Sb5. Below a significantly lower temperature of about 30 K, we measure quantum interference of quasiparticles, a key signature for the formation of a coherent electronic state. These quasiparticles display a pronounced unidirectional feature in reciprocal space that strengthens as the superconducting state is approached. Our experiments reveal that high-temperature rotation symmetry breaking and the charge ordering states are separated from the superconducting ground state by an intermediate-temperature regime with coherent unidirectional quasiparticles. This picture is phenomenologically different compared to that in high-temperature superconductors, shedding light on the complex nature of rotation symmetry breaking in AV3Sb5 kagome superconductors.

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