A one-dimensional dielectric grating, based on a simple geometry, is proposed and investigated to enhance light absorption in a monolayer graphene exploiting guided mode resonances. Numerical findings reveal that the optimized configuration is able to absorb up to 60% of the impinging light at normal incidence for both TE and TM polarizations resulting in a theoretical enhancement factor of about 26 with respect to the monolayer graphene absorption (≈2.3%). Experimental results confirm this behavior showing CVD graphene absorbance peaks up to about 40% over narrow bands of a few nanometers. The simple and flexible design points to a way to realize innovative, scalable and -easy-to fabricate-graphene-based optical absorbers.
Graphene-based absorber exploiting guided mode resonances in one-dimensional gratings / Grande, Marco; Vincenti, M. A.; Stomeo, T.; Bianco, G. V.; De Ceglia, D.; Aközbek, N.; Petruzzelli, Vincenzo; Bruno, G.; De Vittorio, M.; Scalora, M.; D'Orazio, Antonella. - In: OPTICS EXPRESS. - ISSN 1094-4087. - 22:25(2014), pp. 31511-31519. [10.1364/OE.22.031511]
Graphene-based absorber exploiting guided mode resonances in one-dimensional gratings
GRANDE, Marco;PETRUZZELLI, Vincenzo;D'ORAZIO, Antonella
2014-01-01
Abstract
A one-dimensional dielectric grating, based on a simple geometry, is proposed and investigated to enhance light absorption in a monolayer graphene exploiting guided mode resonances. Numerical findings reveal that the optimized configuration is able to absorb up to 60% of the impinging light at normal incidence for both TE and TM polarizations resulting in a theoretical enhancement factor of about 26 with respect to the monolayer graphene absorption (≈2.3%). Experimental results confirm this behavior showing CVD graphene absorbance peaks up to about 40% over narrow bands of a few nanometers. The simple and flexible design points to a way to realize innovative, scalable and -easy-to fabricate-graphene-based optical absorbers.File | Dimensione | Formato | |
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