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Chiral kagome superconductivity modulations with residual Fermi arcs in KV3Sb5 and CsV3Sb5

Authors :
Deng, Hanbin
Qin, Hailang
Liu, Guowei
Yang, Tianyu
Fu, Ruiqing
Zhang, Zhongyi
Wu, Xianxin
Wang, Zhiwei
Shi, Youguo
Liu, Jinjin
Liu, Hongxiong
Yan, Xiao-Yu
Song, Wei
Xu, Xitong
Zhao, Yuanyuan
Yi, Mingsheng
Xu, Gang
Hohmann, Hendrik
Holbæk, Sofie Castro
Dürrnage, Matteo
Zhou, Sen
Chang, Guoqing
Yao, Yugui
Wang, Qianghua
Guguchia, Zurab
Neupert, Titus
Thomale, Ronny
Fischer, Mark H.
Yin, Jia-Xin
Publication Year :
2024

Abstract

Superconductivity involving finite momentum pairing can lead to spatial gap and pair density modulations, as well as Bogoliubov Fermi states within the superconducting gap. However, the experimental realization of their intertwined relations has been challenging. Here, we detect chiral kagome superconductivity modulations with residual Fermi arcs in KV3Sb5 and CsV3Sb5 by normal and Josephson scanning tunneling microscopy down to 30mK with resolved electronic energy difference at microelectronvolt level. We observe a U-shaped superconducting gap with flat residual in-gap states. This gap exhibits chiral 2 by 2 spatial modulations with magnetic field tunable chirality, which align with the chiral 2 by 2 pair density modulations observed through Josephson tunneling. These findings demonstrate a chiral pair density wave (PDW) that breaks time-reversal symmetry. Quasiparticle interference imaging of the in-gap zero-energy states reveals segmented arcs, with high-temperature data linking them to parts of the reconstructed V d-orbital states within the charge order. The detected residual Fermi arcs can be explained by the partial suppression of these d-orbital states through an interorbital 2 by 2 PDW and thus serve as candidate Bogoliubov Fermi states. Additionally, we differentiate the observed PDW order from impurity-induced gap modulations. Our observations not only uncover a chiral PDW order with orbital-selectivity, but also illuminate the fundamental space-momentum correspondence inherent in finite momentum paired superconductivity.<br />Comment: To appear in Nature (2024)

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2408.02896
Document Type :
Working Paper