Spectroscopic Evidence for Competing Order-Induced Pseudogap Phenomena and Unconventional Low-Energy Excitations in High-TC Cuprate Superconductors
N.-C. Yeh, A. D. Beyer, M. L. Teague, S.-P. Lee, S. Tajima, S. I. Lee

TL;DR
This study provides spectroscopic evidence for competing orders influencing pseudogap phenomena and low-energy excitations in high-Tc cuprate superconductors, revealing different behaviors in hole- and electron-doped materials and their interplay with superconductivity.
Contribution
It demonstrates the presence of competing orders in cuprates through spatially resolved tunnelling spectra, highlighting their role in pseudogap phenomena and low-energy excitations, with distinct characteristics in hole- and electron-doped systems.
Findings
Vortex-state LDOS remains suppressed inside vortices in Y-123 and La-112.
Spectral shifts from superconducting to pseudogap features with increasing magnetic field.
Multiple energy-independent wave-vectors indicate coexistence of pair- and spin-density waves.
Abstract
The low-energy excitations of cuprate superconductors exhibit various characteristics that differ from those of simple Bogoliubov quasiparticles for pure d_{x^2-y^2}-wave superconductors. Here we report experimental studies of spatially resolved quasiparticle tunnelling spectra of hole- and electron-type cuprate superconductors that manifest direct evidences for the presence of competing orders (COs) in the cuprates. In contrast to conventional type-II superconductors that exhibit enhanced local density of states (LDOS) peaking at zero energy near the centre of field-induced vortices, the vortex-state LDOS of YBa_2Cu_3O_{7-\delta} (Y-123) and La_{0.1}Sr_{0.9}CuO_2 (La-112) remains suppressed inside the vortex core, with pseudogap (PG)-like features at an energy larger (smaller) than the superconducting (SC) gap \Delta_{SC} in Y-123 (La-112). Energy histograms of the SC and PG features…
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