Understanding the nature of charge density wave (CDW) and superconductivity in the kagome metal AV3Sb5 (A = Cs,Rb,K) is a recent subject of intensive study. Due to the presence of van Hove singularities, electron electron interaction has been suggested to play an important role in the formation of such broken-symmetry states. Recent experiments show that the CDW order is three dimensional and it is staggered across different kagome layers. However, the experimental interpretation for the precise structure of CDW varies in terms of whether it is the star of David (SD), inverse star of David (ISD), or the alternation of the two among neighboring layers. In this work, we show that the origin of these distinct CDW orders can be understood in a unified picture by considering intralayer and interlayer electron-electron interactions as well as the coupling between electrons and lattice distortions. Utilizing an effective nine-band model with V d orbitals and out-of-plane Sb p orbitals, it is demonstrated that the repulsive electron-electron interaction favors charge bond order which induces either SD or ISD upon including lattice distortions. As the interlayer interaction is introduced, & pi;-shifted CDW develops with the staggered ordering along the c axis. We also find that the phase with alternating SD and ISD can be stabilized as the ground state under strong interlayer interaction.
机构:
Indian Inst Technol Madras, Dept Phys, Chennai 600036, Tamil Nadu, India
Indian Inst Technol Madras, Quantum Ctr Diamond & Emerging Mat QuCenDiEM Grp, Chennai 600036, Tamil Nadu, IndiaMax Planck Inst Festkorperforsch, Heisenbergstr 1, D-70569 Stuttgart, Germany
机构:
Beijing National Laboratory for Condensed Matter Physics,and Institute of Physics,Chinese Academy of SciencesBeijing National Laboratory for Condensed Matter Physics,and Institute of Physics,Chinese Academy of Sciences
机构:
Low Temperature Physics Lab, College of Physics and Center of Quantum Materials and Devices, Chongqing UniversityLow Temperature Physics Lab, College of Physics and Center of Quantum Materials and Devices, Chongqing University
Xin-Run Mi
Kun-Ya Yang
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Low Temperature Physics Lab, College of Physics and Center of Quantum Materials and Devices, Chongqing UniversityLow Temperature Physics Lab, College of Physics and Center of Quantum Materials and Devices, Chongqing University
Kun-Ya Yang
Yu-Han Gan
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Low Temperature Physics Lab, College of Physics and Center of Quantum Materials and Devices, Chongqing UniversityLow Temperature Physics Lab, College of Physics and Center of Quantum Materials and Devices, Chongqing University
Yu-Han Gan
Long Zhang
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Low Temperature Physics Lab, College of Physics and Center of Quantum Materials and Devices, Chongqing UniversityLow Temperature Physics Lab, College of Physics and Center of Quantum Materials and Devices, Chongqing University
Long Zhang
Ai-Feng Wang
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Low Temperature Physics Lab, College of Physics and Center of Quantum Materials and Devices, Chongqing UniversityLow Temperature Physics Lab, College of Physics and Center of Quantum Materials and Devices, Chongqing University
Ai-Feng Wang
Yi-Sheng Chai
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Low Temperature Physics Lab, College of Physics and Center of Quantum Materials and Devices, Chongqing UniversityLow Temperature Physics Lab, College of Physics and Center of Quantum Materials and Devices, Chongqing University
Yi-Sheng Chai
Xiao-Yuan Zhou
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Low Temperature Physics Lab, College of Physics and Center of Quantum Materials and Devices, Chongqing UniversityLow Temperature Physics Lab, College of Physics and Center of Quantum Materials and Devices, Chongqing University
Xiao-Yuan Zhou
Ming-Quan He
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Low Temperature Physics Lab, College of Physics and Center of Quantum Materials and Devices, Chongqing UniversityLow Temperature Physics Lab, College of Physics and Center of Quantum Materials and Devices, Chongqing University