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戈薇超导体CsV₃Sb₅中的π相层间位移和堆垛层错

π Phase Interlayer Shift and Stacking Fault in the Kagome Superconductor CsV_{3}Sb_{5}.

作者信息

Jin Feng, Ren Wei, Tan Mingshu, Xie Mingtai, Lu Bingru, Zhang Zheng, Ji Jianting, Zhang Qingming

机构信息

Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China.

School of Physical Science and Technology, Lanzhou University, Lanzhou 730000, China.

出版信息

Phys Rev Lett. 2024 Feb 9;132(6):066501. doi: 10.1103/PhysRevLett.132.066501.

Abstract

The stacking degree of freedom is a crucial factor in tuning material properties and has been extensively investigated in layered materials. The kagome superconductor CsV_{3}Sb_{5} was recently discovered to exhibit a three-dimensional CDW phase below T_{CDW}∼94  K. Despite the thorough investigation of in-plane modulation, the out-of-plane modulation has remained ambiguous. Here, our polarization- and temperature-dependent Raman measurements reveal the breaking of C_{6} rotational symmetry and the presence of three distinct domains oriented at approximately 120° to each other. The observations demonstrate that the CDW phase can be naturally explained as a 2c staggered order phase with adjacent layers exhibiting a relative π phase shift. Further, we discover a first-order structural phase transition at approximately 65 K and suggest that it is a stacking order-disorder phase transition due to stacking fault, supported by the thermal hysteresis behavior of a Cs-related phonon mode. Our findings highlight the significance of the stacking degree of freedom in CsV_{3}Sb_{5} and offer structural insights to comprehend the entanglement between superconductivity and CDW.

摘要

堆垛自由度是调节材料性能的关键因素,并且已经在层状材料中得到了广泛研究。最近发现的 Kagome 超导体 CsV₃Sb₅ 在 T_CDW ∼ 94 K 以下表现出三维电荷密度波(CDW)相。尽管对面内调制进行了深入研究,但面外调制仍不明确。在这里,我们的偏振和温度相关拉曼测量揭示了 C₆ 旋转对称性的破缺以及存在三个彼此取向约为 120° 的不同畴。这些观察结果表明,CDW 相可以自然地解释为 2c 交错序相,相邻层表现出相对 π 相移。此外,我们发现在约 65 K 处存在一级结构相变,并认为这是由于堆垛层错导致的堆垛序-无序相变,这由与 Cs 相关的声子模式的热滞回行为所支持。我们的发现突出了 CsV₃Sb₅ 中堆垛自由度的重要性,并为理解超导性和 CDW 之间的纠缠提供了结构上的见解。

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