| Literature DB >> 26603112 |
Marco Grande1, Giuseppe Valerio Bianco2, Maria Antonietta Vincenti3, Domenico de Ceglia3, Pio Capezzuto2, Michael Scalora4, Antonella D'Orazio1, Giovanni Bruno2.
Abstract
In this paper, we report on the engineering and the realization of optically transparent graphene-based microwave devices using Chemical Vapour Deposition (CVD) graphene whose sheet resistance may be tailored down to values below 30 Ω/sq. In particular, we show that the process was successfully used to realize and characterize a simple, optically transparent graphene-based wire-grid polarizer at microwave frequencies (X band). The availability of graphene operating in a quasi-metallic region may allow the integration of graphene layers in several microwave components, thus leading to the realization of fully transparent (and flexible) microwave devices.Entities:
Year: 2015 PMID: 26603112 PMCID: PMC4658520 DOI: 10.1038/srep17083
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Comparison of the Raman spectra of monolayer CVD graphene before (black) and after (red) SOCl2 doping.
Figure 2(a) Comparison of sheet resistance of 1–5 layers CVD graphene samples on glass substrate with (red circles) and without (black squares) SOCl2 doping. (b) Optical transmittance for 1–5 layer CVD graphene doped by SOCl2 treatment.
Figure 3Analytical model (solid line) and experimental findings (circles) for the reflectance RGR (blue), transmittance TGR (red) and absorbance AGR (green) when Rs is varied in the range 10 Ω/sq – 2 kΩ/sq. Please note that the x-axis is in logarithm scale. The maximum absorbance (obtained considering Rs = η0/2 where η0 is the vacuum impedance) separates the quasi-metallic region (Rs < η0/2) from the lossy-dielectric region (Rs > η0/2). The reflectance and transmittance were measured by means of a microwave setup operating at 9 GHz.
Figure 4(a) Picture of the fabricated 4-layer-graphene-based wire-grid polarizer; (b) sketch of the graphene-based polarizer and its working principle. (c) Normalized transmittance (T90 – Tpol)/T90 for the graphene-based polarizer (red curve) and the copper-based polarizer (blue curve) where T90 and Tpol are the transmittance at 90° and the polarizer transmittance, respectively.