| Literature DB >> 34587621 |
Hui Chen1,2,3,4, Haitao Yang1,2,3,4, Bin Hu1,2, Zhen Zhao1,2, Jie Yuan1,2, Yuqing Xing1,2, Guojian Qian1,2, Zihao Huang1,2, Geng Li1,2,3, Yuhan Ye1,2, Sheng Ma1,2, Shunli Ni1,2, Hua Zhang1,2, Qiangwei Yin5, Chunsheng Gong5, Zhijun Tu5, Hechang Lei5, Hengxin Tan6, Sen Zhou2,3,7, Chengmin Shen1,2, Xiaoli Dong1,2, Binghai Yan6, Ziqiang Wang8, Hong-Jun Gao9,10,11,12.
Abstract
The transition metal kagome lattice materials host frustrated, correlated and topological quantum states of matter1-9. Recently, a new family of vanadium-based kagome metals, AV3Sb5 (A = K, Rb or Cs), with topological band structures has been discovered10,11. These layered compounds are nonmagnetic and undergo charge density wave transitions before developing superconductivity at low temperatures11-19. Here we report the observation of unconventional superconductivity and a pair density wave (PDW) in CsV3Sb5 using scanning tunnelling microscope/spectroscopy and Josephson scanning tunnelling spectroscopy. We find that CsV3Sb5 exhibits a V-shaped pairing gap Δ ~ 0.5 meV and is a strong-coupling superconductor (2Δ/kBTc ~ 5) that coexists with 4a0 unidirectional and 2a0 × 2a0 charge order. Remarkably, we discover a 3Q PDW accompanied by bidirectional 4a0/3 spatial modulations of the superconducting gap, coherence peak and gap depth in the tunnelling conductance. We term this novel quantum state a roton PDW associated with an underlying vortex-antivortex lattice that can account for the observed conductance modulations. Probing the electronic states in the vortex halo in an applied magnetic field, in strong field that suppresses superconductivity and in zero field above Tc, reveals that the PDW is a primary state responsible for an emergent pseudogap and intertwined electronic order. Our findings show striking analogies and distinctions to the phenomenology of high-Tc cuprate superconductors, and provide groundwork for understanding the microscopic origin of correlated electronic states and superconductivity in vanadium-based kagome metals.Entities:
Year: 2021 PMID: 34587621 DOI: 10.1038/s41586-021-03983-5
Source DB: PubMed Journal: Nature ISSN: 0028-0836 Impact factor: 49.962