Unconventional spectral signature of Tc in a pure d-wave superconductor

被引:0
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作者
Su-Di Chen
Makoto Hashimoto
Yu He
Dongjoon Song
Jun-Feng He
Ying-Fei Li
Shigeyuki Ishida
Hiroshi Eisaki
Jan Zaanen
Thomas P. Devereaux
Dung-Hai Lee
Dong-Hui Lu
Zhi-Xun Shen
机构
[1] Stanford University,Department of Applied Physics
[2] Stanford University,Department of Physics
[3] SLAC National Accelerator Laboratory and Stanford University,Stanford Institute for Materials and Energy Sciences
[4] SLAC National Accelerator Laboratory,Stanford Synchrotron Radiation Lightsource
[5] National Institute of Advanced Industrial Science and Technology,Institute Lorentz for Theoretical Physics
[6] Leiden University,Department of Materials Science and Engineering
[7] Stanford University,Department of Physics
[8] University of California,Materials Sciences Division
[9] Berkeley,Kavli Energy NanoScience Institute
[10] Lawrence Berkeley National Laboratory,Department of Applied Physics
[11] University of California,Center for Correlated Electron Systems
[12] Berkeley,Department of Physics
[13] Yale University,undefined
[14] Institute for Basic Science,undefined
[15] University of Science and Technology of China,undefined
来源
Nature | 2022年 / 601卷
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摘要
In conventional superconductors, the phase transition into a zero-resistance and perfectly diamagnetic state is accompanied by a jump in the specific heat and the opening of a spectral gap1. In the high-transition-temperature (high-Tc) cuprates, although the transport, magnetic and thermodynamic signatures of Tc have been known since the 1980s2, the spectroscopic singularity associated with the transition remains unknown. Here we resolve this long-standing puzzle with a high-precision angle-resolved photoemission spectroscopy (ARPES) study on overdoped (Bi,Pb)2Sr2CaCu2O8+δ (Bi2212). We first probe the momentum-resolved electronic specific heat via spectroscopy and reproduce the specific heat peak at Tc, completing the missing link for a holistic description of superconductivity. Then, by studying the full momentum, energy and temperature evolution of the spectra, we reveal that this thermodynamic anomaly arises from the singular growth of in-gap spectral intensity across Tc. Furthermore, we observe that the temperature evolution of in-gap intensity is highly anisotropic in the momentum space, and the gap itself obeys both the d-wave functional form and particle–hole symmetry. These findings support the scenario that the superconducting transition is driven by phase fluctuations. They also serve as an anchor point for understanding the Fermi arc and pseudogap phenomena in underdoped cuprates.
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页码:562 / 567
页数:5
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