Characteristic energy of the nematic-order state and its connection to enhancement of superconductivity in cuprate superconductors
arXiv:2109.10079 · doi:10.1103/PhysRevB.104.224503
Abstract
The new development in sublattice-phase-resolved imaging of electronic structure now allow for the visualisation of the nematic-order state characteristic energy of cuprate superconductors in a wide doping regime. However, it is still unclear how this characteristic energy of the nematic-order state is correlated with the enhancement of superconductivity. Here the doping dependence of the nematic-order state characteristic energy in cuprate superconductors and of its possible connection to the enhancement of superconductivity is investigated within the framework of the kinetic-energy-driven superconductivity. It is shown that the characteristic energy of the nematic-order state is found to be particularly large in the underdoped regime, then it smoothly decreases upon the increase of doping, in full agreement with the corresponding experimental observations. Moreover, the characteristic energy of the nematic-order state as a function of the nematic-order state strength in the underdoped regime presents a similar behavior of the superconducting transition temperature. This suggests a possible connection between the nematic-order state characteristic energy and the enhancement of the superconductivity.
9 pages, 4 figures, added references and discussions, accepted for publication in Physical Review B. arXiv admin note: text overlap with arXiv:2105.14494
References in corpus (17)
- Scanning tunneling spectroscopy of high-temperature superconductors
- Electronic liquid crystal state in the high-temperature superconductor YBCO(6.45)
- Lattice symmetry breaking in cuprate superconductors: Stripes, nematics, and superconductivity
- Formation of a Nematic Fluid at High Fields in Sr3Ru2O7
- Two Gaps Make a High Temperature Superconductor?
- Rotational Symmetry Breaking in the Hidden-Order Phase of URu2Si2
- Thermodynamic evidence for nematic phase transition at the onset of pseudogap in YBaCuO
- Probing topological quantum matter with scanning tunnelling microscopy
- The magnetic nature of superconductivity in doped cuprates
- Direct observation of charge order in underdoped and optimally doped Bi(Sr,La)CuO by resonant inelastic x-ray scattering
- Spontaneous breaking of the Fermi surface symmetry in the t-J model: a numerical study
- Kinetic-energy driven superconductivity in cuprate superconductors
- Restored strange metal phase through suppression of charge density waves in underdoped YBaCuO
- Linking the pseudo-gap in the cuprates with local symmetry breaking: a commentary
- Anisotropic spin and charge excitations in superconductors: signature of electronic nematic order
- Interplay of Pomeranchuk instability and superconductivity in the two-dimensional repulsive Hubbard model
- Microscopic evidence for the intra-unit-cell electronic nematicity inside the pseudogap phase in YBaCuO
Cited by in corpus (4)
- Low-temperature T-linear resistivity in the strange metal phase of overdoped cuprate superconductors due to umklapp scattering from a spin excitation
- Low-temperature T resistivity in the underdoped pseudogap phase versus T-linear resistivity in the overdoped strange-metal phase of cuprate superconductors
- Enhancement of superconductivity by electronic nematicity in cuprate superconductors
- Electromagnetic response of cuprate superconductors with coexisting electronic nematicity