Electronic structure of kinetic energy driven cuprate superconductors
Shiping Feng, Huaiming Guo, Yu Lan, and Li Cheng

TL;DR
This paper reviews the electronic structure of kinetic energy driven cuprate superconductors, emphasizing the charge-spin separation fermion-spin theory and its implications for understanding ARPES features and the BCS-like nature of the superconducting state.
Contribution
It introduces a kinetic energy driven superconducting mechanism within the charge-spin separation framework, explaining electronic features and pairing in cuprates.
Findings
Qualitatively reproduces ARPES features of cuprates
Shows the superconducting state is BCS-like with d-wave symmetry
Explains peak-dip-hump and double-peak structures via bilayer splitting
Abstract
In this paper, we review the low energy electronic structure of the kinetic energy driven d-wave cuprate superconductors. We give a general description of the charge-spin separation fermion-spin theory, where the constrained electron is decoupled as the gauge invariant dressed holon and spin. In particular, we show that under the decoupling scheme, the charge-spin separation fermion-spin representation is a natural representation of the constrained electron defined in a restricted Hilbert space without double electron occupancy. Based on the charge-spin separation fermion-spin theory, we have developed the kinetic energy driven superconducting mechanism, where the superconducting state is controlled by both superconducting gap parameter and quasiparticle coherence. Within this kinetic energy driven superconductivity, we have discussed the low energy electronic structure of the single…
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