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Area of Science:

  • Condensed Matter Physics
  • Materials Science
  • Superconductivity

Background:

  • Iron selenide (FeSe) is a superconductor near the Bardeen-Cooper-Schrieffer (BCS) and Bose-Einstein Condensation (BEC) crossover regime.
  • In this regime, superconducting properties like gap size and transition temperature (Tc) are comparable to Fermi energy.
  • Theoretical predictions include quantized vortex bound states and a pseudogap from preformed Cooper pairs above Tc.

Purpose of the Study:

  • To experimentally search for quantized vortex bound states and pseudogap features in FeSe.
  • To investigate the implications of these findings for understanding FeSe superconductivity.

Main Methods:

  • Spectroscopic-imaging scanning tunneling microscopy (SI-STM) was employed.
  • SI-STM allows for atomic-resolution imaging and local electronic density of states measurements.

Main Results:

  • Friedel-like oscillations, indicative of quantized vortex bound states, were observed near vortices.
  • A pseudogap in the quasiparticle-excitation spectrum above the superconducting transition temperature was not detected.

Conclusions:

  • The observation of quantized vortex states aligns with theoretical expectations for the BCS-BEC crossover regime.
  • The absence of a detectable pseudogap, despite theoretical predictions, suggests a more complex scenario.
  • The multiband nature of FeSe is proposed as a potential explanation for these seemingly contradictory experimental findings.