Effects of Electron-Electron Interactions on Electronic Raman Scattering of Graphite in High Magnetic Fields
Abstract
We report the observation of strongly temperature-dependent, asymmetric spectral lines in electronic Raman scattering spectra of graphite in a high magnetic field up to 45 T applied along the c-axis. The magnetic field quantizes the in-plane motion, while the out-of-plane motion remains free, effectively reducing the system dimension from three to one. Optically created electron-hole pairs interact with, or shake up, the one-dimensional Fermi sea in the lowest Landau subbands. Based on the Tomonaga-Luttinger liquid theory, we show that interaction effects modify the van Hove singularity to the form at zero temperature. At finite temperature, we predict a thermal broadening factor that increases linearly with the temperature. Our model reproduces the observed temperature-dependent line-shape, determining to be 0.05 at 40 T.
Keywords
Cite
@article{arxiv.1304.5415,
title = {Effects of Electron-Electron Interactions on Electronic Raman Scattering of Graphite in High Magnetic Fields},
author = {Y. Ma and Y. Kim and N. G. Kalugin and A. Lombardo and A. C. Ferrari and J. Kono and A. Imambekov and D. Smirnov},
journal= {arXiv preprint arXiv:1304.5415},
year = {2014}
}
Comments
5 pages, 3 figures