Theoretical understanding of correlation between magnetic phase transition and the superconducting dome in high-Tc cuprates

被引:0
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作者
Chen Zhang
Cai-Xin Zhang
Su-Huai Wei
Haiqing Lin
Hui-Xiong Deng
机构
[1] Chinese Academy of Sciences,State Key Laboratory of Superlattices and Microstructures, Institute of Semiconductors
[2] University of Chinese Academy of Sciences,Center of Materials Science and Optoelectronics Engineering
[3] Beijing Computational Science Research Center,undefined
来源
Science China Physics, Mechanics & Astronomy | 2024年 / 67卷
关键词
high-temperature superconductivity; antiferromagnetic order; electron-phonon coupling; doping effect; cuprates;
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学科分类号
摘要
Many issues concerning the origin of high-temperature superconductivity (HTS) are still under debate. For example, how the magnetic order varies with doping and its relationship with the superconducting temperature (Tc); and why Tc always peaks near the quantum critical point. In this paper, taking hole-doped La2CuO4 as a classical example, we employ the first-principles band structure and total energy calculations with Monte Carlo simulations to explore how the symmetry-breaking magnetic ground state evolves with hole doping and the origin of a dome-shaped superconductivity region in the phase diagram. We demonstrate that the local antiferromagnetic order and doping play key roles in determining the electron-phonon coupling, thus Tc. Initially, the La2CuO4 possesses a checkerboard local antiferromagnetic ground state. As the hole doping increases, Tc increases with the enhanced electron-phonon coupling strength. But as the doping increases further, the strength of the antiferromagnetic interaction weakens and spin fluctuation increases. At the critical doping level, a magnetic phase transition occurs that reduces the local antiferromagnetism-assisted electron-phonon coupling, thus diminishing the Tc. The superconductivity disappears in the heavily overdoped region when the ferromagnetic order dominates. These observations could account for why cuprates have a dome-shaped superconductivity region in the phase diagram. Our study, thus, contributes to a fundamental understanding of the correlation between doping, local magnetic order, and superconductivity of HTS.
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