English

The photon absorption edge in superconductors and gapped 1D systems

Mesoscale and Nanoscale Physics 2009-12-16 v4

Abstract

Opening of a gap in the low-energy excitations spectrum affects the power-law singularity in the photon absorption spectrum A(Ω)A(\Omega). In the normal state, the singularity, A(Ω)[D/(ΩΩth)]αA(\Omega)\propto [D/(\Omega-\Omega_{\rm th})]^\alpha, is characterized by an interaction-dependent exponent α\alpha. On the contrary, in the supeconducting state the divergence, A(Ω)(D/Δ)α(ΩΩ~th)1/2A(\Omega)\propto (D/\Delta)^\alpha(\Omega-\tilde{\Omega}_{\rm th})^{-1/2}, is interaction-independent, while threshold is shifted, Ω~th=Ωth+Δ\tilde{\Omega}_{\rm th}=\Omega_{\rm th}+\Delta; the ``normal-metal'' form of A(Ω)A(\Omega) resumes at (ΩΩ~th)Δexp(1/α)(\Omega-\tilde{\Omega}_{\rm th})\gtrsim \Delta\exp(1/\alpha). If the core hole is magnetic, it creates in-gap states; these states transform drastically the absorption edge. In addition, processes of scattering off the magnetic core hole involving spin-flip give rise to inelastic absorption with one or several {\it real} excited pairs in the final state, yielding a structure of peaks in A(Ω)A(\Omega) at multiples of 2Δ2\Delta above the threshold frequency. The above conclusions apply to a broad class of systems, e.g., Mott insulators, where a gap opens at the Fermi level due to the interactions.

Keywords

Cite

@article{arxiv.0904.3327,
  title  = {The photon absorption edge in superconductors and gapped 1D systems},
  author = {V. V. Mkhitaryan and E. G. Mishchenko and M. E. Raikh and L. I. Glazman},
  journal= {arXiv preprint arXiv:0904.3327},
  year   = {2009}
}

Comments

6 pages, 5 figures; published version

R2 v1 2026-06-21T12:53:44.180Z