Energy gaps in high-transition temperature cuprate superconductors
Makoto Hashimoto, Inna M. Vishik, Rui-Hua He, Thomas P. Devereaux, and, Zhi-Xun Shen

TL;DR
This paper reviews how ARPES has advanced understanding of the complex energy gap phenomena in high-Tc cuprate superconductors, highlighting the pseudogap, gap hierarchy, and their relation to superconductivity.
Contribution
It provides a comprehensive overview of recent ARPES findings on spectral gaps, phase transitions, and competing orders in cuprates, clarifying unresolved issues in the field.
Findings
ARPES reveals the anisotropic d-wave superconducting gap.
The pseudogap exhibits similar anisotropy to the superconducting gap.
Multiple ground states exist within the superconducting dome.
Abstract
The spectral energy gap is an important signature that defines states of quantum matter: insulators, density waves, and superconductors have very different gap structures. The momentum resolved nature of angle-resolved photoemission spectroscopy (ARPES) makes it a powerful tool to characterize spectral gaps. ARPES has been instrumental in establishing the anisotropic d-wave structure of the superconducting gap in high-transition temperature (Tc) cuprates, which is different from the conventional isotropic s-wave superconducting gap. Shortly afterwards, ARPES demonstrated that an anomalous gap above Tc, often termed the pseudogap, follows a similar anisotropy. The nature of this poorly understood pseudogap and its relationship with superconductivity has since become the focal point of research in the field. To address this issue, the momentum, temperature, doping, and materials…
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