| Literature DB >> 28863263 |
Bowen Li1, Shuai Zu1, Jiadong Zhou2, Qiao Jiang1, Bowen Du1, Hangyong Shan1, Yang Luo1, Zheng Liu2, Xing Zhu1, Zheyu Fang1.
Abstract
The manipulation of light in an integrated circuit is crucial for the development of high-speed electro-optic devices. Recently, molybdenum disulfide (MoS2) monolayers generated broad interest for the optoelectronics because of their huge exciton binding energy, tunable optical emission, direct electronic band-gap structure, etc. Miniaturization and multifunctionality of electro-optic devices further require the manipulation of light-matter interaction at the single-nanoparticle level. The strong exciton-plasmon interaction that is generated between the MoS2 monolayers and metallic nanostructures may be a possible solution for compact electro-optic devices at the nanoscale. Here, we demonstrate a nanoplasmonic modulator in the visible spectral region by combining the MoS2 monolayers with a single Au nanodisk. The narrow MoS2 excitons coupled with broad Au plasmons result in a deep Fano resonance, which can be switched on and off by applying different gate voltages on the MoS2 monolayers. A reversible display device that is based on this single-nanoparticle modulator is demonstrated with a heptamer pattern that is actively controlled by the external gates. Our work provides a potential application for electro-optic modulation on the nanoscale and promotes the development of gate-tunable nanoplasmonic devices in the future.Entities:
Keywords: Fano resonance; MoS2; electro-optic modulator; exciton−plasmon interaction; trions
Year: 2017 PMID: 28863263 DOI: 10.1021/acsnano.7b05479
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881