Magnetic Oscillations and Quasiparticle Band Structure in the Mixed State of Type-II Superconductors
M.R. Norman, A.H. MacDonald, and H. Akera

TL;DR
This paper investigates how magnetic oscillations and quasiparticle band structures behave in the mixed state of type-II superconductors, revealing the impact of pairing self-energy on Landau level mixing and oscillation damping.
Contribution
It introduces a formalism to analyze Landau level effects in the superconducting mixed state, showing how quasiparticle bands evolve with pairing strength and magnetic field.
Findings
Magnetic oscillations persist with damping at small pairing self-energies.
Quasiparticle Landau levels' width scales as Δ₀ n_μ^(-1/4).
Oscillations vanish rapidly with larger pairing self-energies.
Abstract
We consider magnetic oscillations due to Landau quantization in the mixed state of type-II superconductors. Our work is based on a previously developed formalism which allows the mean-field gap equations of the Abrikosov state to be conveniently solved in a Landau level representation. We find that the quasiparticle band structure changes qualitatively when the pairing self-energy becomes comparable to the Landau level separation. For small pairing self- energies, Landau level mixing due to the superconducting order is weak and magnetic oscillations survive in the superconducting state although they are damped. We find that the width of the quasiparticle Landau levels in this regime varies approximately as where is proportional to the magnitude of the order parameter and is the Landau level index at the Fermi energy. For larger pairing…
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