Quantum plasmon enhanced nonlinear wave mixing in graphene nanoflakes
Abstract
A distant-neighbor quantum-mechanical method is used to study the nonlinear optical wave mixing in graphene nanoflakes (GNFs), including sum- and difference-frequency generation, as well as four-wave mixing. Our analysis shows that molecular-scale GNFs support quantum plasmons in the visible spectrum region, and significant enhancement of nonlinear optical wave mixing is achieved. Specifically, the second- and third-order wave-mixing polarizabilities of GNFs are dramatically enhanced, provided that one (or more) of the input or output frequencies coincide with a quantum plasmon resonance. Moreover, by embedding a cavity into hexagonal GNFs, we show that one can break the structural inversion symmetry and enable otherwise forbidden second-order wave mixing, which is found to be enhanced by the quantum plasmon resonance too. This study reveals that the molecular-sized graphene could be used in the quantum regime for nanoscale nonlinear optical devices and ultrasensitive molecular sensors.
Keywords
Cite
@article{arxiv.2102.09843,
title = {Quantum plasmon enhanced nonlinear wave mixing in graphene nanoflakes},
author = {Hanying Deng and Changming Huang and Yingji He and Fangwei Ye},
journal= {arXiv preprint arXiv:2102.09843},
year = {2022}
}
Comments
Chin. Phys. B,2021,30(4):044213.19 pages,7 figures