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Electrical modulation of a photonic crystal band-edge laser with a graphene monolayer

Authors
Kim, HanbitLee, MyungjaeJeong, HyunhakHwang, Min-SooKim, Ha-ReemPark, SeondoPark, Yun DanielLee, TakheePark, Hong-GyuJeon, Heonsu
Issue Date
14-May-2018
Publisher
ROYAL SOC CHEMISTRY
Citation
NANOSCALE, v.10, no.18, pp.8496 - 8502
Indexed
SCIE
SCOPUS
Journal Title
NANOSCALE
Volume
10
Number
18
Start Page
8496
End Page
8502
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/75547
DOI
10.1039/c8nr01614c
ISSN
2040-3364
Abstract
The electrical control of photonic crystal (PhC) lasers has been an attractive but challenging issue. Laser operation by electrical injection is of key importance for the viability and applicability of the PhC lasers. Another key factor is the electrical modulation of the laser output. The Fermi level of a graphene monolayer can be controlled by electrical gating, which adjusts its optical absorption. In this study, a graphene monolayer sheet is integrated on top of a two-dimensional PhC structure composed of InGaAsP multiple-quantum-wells (MQWs) in order to demonstrate the electrical modulation of a high-power (microwatt-scale) PhC band-edge laser. The introduced dielectric spacer layer presets the delicate balance between the optical gain from the MQWs and optical loss at the graphene monolayer. The proposed device is covered by an ion-gel film, which enables a low-voltage laser modulation at vertical bar V-g vertical bar <= 1 V. The modulation is extensively investigated experimentally, and the obtained results are confirmed by performing numerical simulations.
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