English

Breaking a Bloch-wave interferometer: quasiparticle species-specific temperature-dependent nonequilibrium dephasing

Mesoscale and Nanoscale Physics 2023-06-30 v1 Materials Science

Abstract

Recently, high-order sideband polarimetry has been established as an experimental method that links the polarization of sidebands to an interference of Bloch wavefunctions. However, the robustness of sideband polarizations to increasing dephasing remains to be explored. Here, we investigate the dependence of high-order sideband generation in bulk gallium arsenide on dephasing by tuning temperature. We find that the intensities of the sidebands, but not their polarizations, depend strongly on temperature. Using our polarimetry method, we are able to isolate the contributions of electron-heavy hole (HH) and electron-light hole (LH) pairs to sideband intensities, and separately extract the nonequilibrium dephasing coefficients associated with the longitudinal optical (LO) phonons and acoustic (A) phonons for each species of electron-hole pair. We find that ΓHH,A=6.1±1.6\Gamma_{\text{HH},\text{A}} = 6.1 \pm 1.6 μ\mueV/K, ΓLH,A<1.5\Gamma_{\text{LH},\text{A}} < 1.5 μ\mueV/K, ΓHH,LO=14±3\Gamma_{\text{HH},\text{LO}} = 14 \pm 3 meV, and ΓLH,LO=30±3\Gamma_{\text{LH},\text{LO}} = 30 \pm 3 meV.

Keywords

Cite

@article{arxiv.2306.16586,
  title  = {Breaking a Bloch-wave interferometer: quasiparticle species-specific temperature-dependent nonequilibrium dephasing},
  author = {Joseph B. Costello and Seamus D. O'Hara and Qile Wu and Moonsuk Jank and Loren N. Pfeiffer and Ken W. West and Mark S. Sherwin},
  journal= {arXiv preprint arXiv:2306.16586},
  year   = {2023}
}

Comments

10 pages, 4 figures

R2 v1 2026-06-28T11:17:24.943Z