Control of Raman scattering quantum interference pathways in graphene
Abstract
Graphene is an ideal platform to study the coherence of quantum interference pathways by tuning doping or laser excitation energy. The latter produces a Raman excitation profile that provides direct insight into the lifetimes of intermediate electronic excitations and, therefore, on quantum interference, which has so far remained elusive. Here, we control the Raman scattering pathways by tuning the laser excitation energy in graphene doped up to 1.05eV, above what achievable with electrostatic doping. The Raman excitation profile of the G mode indicates its position and full width at half maximum are linearly dependent on doping. Doping-enhanced electron-electron interactions dominate the lifetime of Raman scattering pathways, and reduce Raman interference. This paves the way for engineering quantum pathways in doped graphene, nanotubes and topological insulators.
Cite
@article{arxiv.2301.09359,
title = {Control of Raman scattering quantum interference pathways in graphene},
author = {Xue Chen and Sven Reichardt and Miao-Ling Lin and Yu-Chen Leng and Yan Lu and Heng Wu and Rui Mei and Ludger Wirtz and Xin Zhang and Andrea C. Ferrari and Ping-Heng Tan},
journal= {arXiv preprint arXiv:2301.09359},
year = {2023}
}
Comments
18 pages, 4 figures