DocumentCode
81596
Title
Hybrid Graphene-Microfiber Waveguide for Chemical Gas Sensing
Author
Yu Wu ; Bai-Cheng Yao ; Yang Cheng ; Yun-Jiang Rao ; Yuan Gong ; Weili Zhang ; Zegao Wang ; Yuanfu Chen
Author_Institution
Key Lab. of Opt. Fiber Sensing & Commun. (Educ. Minist. of China), Univ. of Electron. Sci. & Technol. of China, Chengdu, China
Volume
20
Issue
1
fYear
2014
fDate
Jan.-Feb. 2014
Firstpage
49
Lastpage
54
Abstract
Graphene has been attracting great interest as the basis of novel photonic devices and sensors due to its many unique optical and electric properties that are quite different from conventional film materials. In this paper, we propose and demonstrate a novel hybrid graphene-microfiber waveguide structure and its application to chemical gas sensing for the first time to our knowledge. As the complex refractive index of the extremely thin graphene film (<;1 nm) can be easily modified by chemical gas molecules distributing on its surface, the transverse electric mode surface wave intensity is sensitive to gas concentration. Such an intensity modulation induced by gas molecules can be detected via the coupling of evanescent field between the graphene waveguide and the microfiber. A sensitivity of 0.31 dB/100 ppm and good reversibility are observed experimentally for acetone vapor gas sensing. It is believed that this hybrid waveguide structure could open a new window to realize a variety of graphene-based photonic sensors, for potential applications in the fields of biology, medicine, and chemistry.
Keywords
chemical sensors; fibre optic sensors; graphene; integrated optics; intensity modulation; micro-optics; optical waveguides; refractive index; silicon compounds; C; SiO2; chemical gas sensing; evanescent field; extremely thin graphene film; hybrid graphene-microfiber waveguide; intensity modulation; refractive index; silica microfiber; transverse electric mode surface wave intensity; Chemical gases; Graphene; Microfibers; Sensors; Graphene; chemical gas sensing; microfiber;
fLanguage
English
Journal_Title
Selected Topics in Quantum Electronics, IEEE Journal of
Publisher
ieee
ISSN
1077-260X
Type
jour
DOI
10.1109/JSTQE.2013.2263117
Filename
6522118
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