| Literature DB >> 31268338 |
Heng Li1, Jhu-Hong Li1, Kuo-Bin Hong1, Min-Wen Yu2, Yi-Cheng Chung3, Chu-Yuan Hsu1, Jhen-Hong Yang4, Chang-Wei Cheng5, Zhen-Ting Huang1, Kuo-Ping Chen6, Tzy-Rong Lin3,7,8, Shangjr Gwo5, Tien-Chang Lu1.
Abstract
Graphene is a two-dimensional (2D) structure that creates a linear relationship between energy and momentum that not only forms massless Dirac fermions with extremely high group velocity but also exhibits a broadband transmission from 300 to 2500 nm that can be applied to many optoelectronic applications, such as solar cells, light-emitting devices, touchscreens, ultrafast photodetectors, and lasers. Although the plasmonic resonance of graphene occurs in the terahertz band, graphene can be combined with a noble metal to provide a versatile platform for supporting surface plasmon waves. In this study, we propose a hybrid graphene-insulator-metal (GIM) structure that can modulate the surface plasmon polariton (SPP) dispersion characteristics and thus influence the performance of plasmonic nanolasers. Compared with values obtained when graphene is not used on an Al template, the propagation length of SPP waves can be increased 2-fold, and the threshold of nanolasers is reduced by 50% when graphene is incorporated on the template. The GIM structure can be further applied in the future to realize electrical control or electrical injection of plasmonic devices through graphene.Entities:
Keywords: Nanolaser; ZnO; graphene; nanowire; surface plasmon
Year: 2019 PMID: 31268338 DOI: 10.1021/acs.nanolett.9b01260
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189