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层状伊辛超导体中具有零场非互易输运的维度驱动反常金属态

Dimensionality-Driven Anomalous Metallic State with Zero-Field Nonreciprocal Transport in Layered Ising Superconductors.

作者信息

Cui Yanwei, Liu Zenglin, Liu Qin, Xiong Junlin, Xie Yongqin, Dai Yudi, Zhou Ji, Wang Lizheng, Fang Hanyan, Liu Haiwen, Liang Shi-Jun, Cheng Bin, Miao Feng

机构信息

Nanjing University, National Laboratory of Solid State Microstructures, Institute of Brain-Inspired Intelligence, School of Physics, Collaborative Innovation Center of Advanced Microstructures, Nanjing 210093, China.

Beijing Normal University, Center for Advanced Quantum Studies, Department of Physics, Beijing 100875, China.

出版信息

Phys Rev Lett. 2025 Aug 15;135(7):076501. doi: 10.1103/5qvz-d3vl.

Abstract

The anomalous metal state (AMS), observed in "failed" superconductors, provides insights into superconductivity and quantum criticality, with studies revealing unconventional quantum phases like the Bose metal. Recently, layered transition metal dichalcogenide (TMD) superconductors approaching the two-dimensional limit have garnered significant attention for the enhanced phase fluctuations and electronic correlations. Investigating AMSs in these systems, particularly in the absence of an external magnetic field, could offer valuable insights into the dimensionality-driven emergence of exotic quantum phenomena, including triplet Cooper pairing, phase fluctuation dynamics, and especially the recently discovered field-free superconducting diode effects. However, the field-free AMS has yet to be observed in TMD superconductors. Here, we report the dimensionality-tunable AMS near the superconducting quantum phase transitions in a layered TMD superconductor 2H-Ta_{2}S_{3}Se. In samples with thicknesses below 10 nm, we demonstrate magnetic field-driven AMS under external magnetic field, characterized by the vanishing of the Hall resistance and the presence of finite longitudinal resistance. Remarkably, an unexpected zero-field AMS emerges as the sample thickness is reduced to 3 nm. This AMS aligns well with the quantum vortex creep model and exhibits nonreciprocal transport behaviors, suggesting the onset of spontaneous time-reversal symmetry breaking accompanied by vortex motion as the system approaches the two-dimensional limit. Our findings open new avenues for exploring dimensionality-driven exotic superconducting quantum critical phases and pave the way for a deeper understanding of zero-field superconducting diode effects.

摘要

在“失败”的超导体中观察到的反常金属态(AMS),为超导性和量子临界性提供了见解,研究揭示了诸如玻色金属等非常规量子相。最近,接近二维极限的层状过渡金属二硫属化物(TMD)超导体因增强的相位涨落和电子关联而备受关注。研究这些系统中的AMS,特别是在没有外部磁场的情况下,可能会为维度驱动的奇异量子现象的出现提供有价值的见解,包括三重态库珀配对、相位涨落动力学,尤其是最近发现的无场超导二极管效应。然而,在TMD超导体中尚未观察到无场AMS。在此,我们报告了在层状TMD超导体2H-Ta₂S₃Se中接近超导量子相变时的维度可调AMS。在厚度低于10纳米的样品中,我们展示了外部磁场驱动下的AMS,其特征是霍尔电阻消失和存在有限的纵向电阻。值得注意的是,当样品厚度减小到3纳米时,出现了意想不到的零场AMS。这种AMS与量子涡旋蠕动模型吻合良好,并表现出非互易输运行为,表明随着系统接近二维极限,伴随着涡旋运动出现了自发的时间反演对称性破缺。我们的发现为探索维度驱动的奇异超导量子临界相开辟了新途径,并为更深入理解零场超导二极管效应铺平了道路。

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