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Enhanced spatial near-infrared modulation of graphene-loaded perfect absorbers using plasmonic nanoslits
Author(s) -
Yijun Cai,
Jinfeng Zhu,
Qing Liu,
Timothy Lin,
Jianyang Zhou,
Longfang Ye,
Zhiping Cai
Publication year - 2015
Publication title -
optics express
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.394
H-Index - 271
ISSN - 1094-4087
DOI - 10.1364/oe.23.032318
Subject(s) - graphene , plasmon , materials science , optoelectronics , optics , infrared , modulation (music) , surface plasmon , surface plasmon polariton , optical modulator , phase modulation , nanotechnology , physics , acoustics , phase noise
Modulating spatial near-infrared light for ultra-compact electro-optic devices is a critical issue in optical communication and imaging applications. To date, spatial near-infrared modulators based on graphene have been reported, but they showed limited modulation effects due to the relatively weak light-graphene interaction. In combination with graphene and metallic nanoslits, we design a kind of ultrathin near-infrared perfect absorber with enhanced spatial modulation effects and independence on a wide range of incident angles. The modulated spectral shift of central wavelength is up to 258.2 nm in the near-infrared range, which is more promising in applications than state-of-the-art devices. The modulation enhancement is attributed to the plasmonic nanoslit mode, in which the optical electric field is highly concentrated in the deep subwavelength scale and the light-graphene interaction is significantly strengthened. The physical insight is deeply revealed by a combination of equivalent circuit and electromagnetic field analysis. The design principles are not only crucial for spatial near-infrared modulators, but also provide a key guide for developing active near-infrared patch nanoantennas based on graphene.

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