| Literature DB >> 29977667 |
Olga E Glukhova1, Igor S Nefedov2,3, Alexander S Shalin2, Мichael М Slepchenkov1.
Abstract
For the first time, we estimated perspectives for using a new 2D carbon nanotube (CNT)-graphene hybrid nanocomposite as a base element of a new generation o optical nanodevices. The 2D CNT-graphene hybrid nanocomposite was modelled by two graphene monolayers between which single-walled CNTs with different diameters were regularly arranged at different distances from each other. Spectra of the real and imaginary parts of the diagonal elements of the surface conductivity tensor for four topological models of the hybrid nanocomposite have been obtained. The absorption coefficient for p-polarized and s-polarized radiation was calculated for different topological models of the hybrid nanocomposite. It was found that the characteristic peaks with high intensity appear in the UV region at wavelengths from 150 to 350 nm (related to graphene) and in the optical range from 380 to 740 nm irrespective of the diameter of the tubes and the distance between them. For waves corresponding to the most intense peaks, the absorption coefficient as a function of the angle of incidence was calculated. It was shown that the optical properties of the hybrid nanocomposite were approximately equal for both metallic and semiconductor nanotubes.Entities:
Keywords: 2D CNT–graphene hybrid nanocomposite; absorption coefficient; optical conductivity; optical nanodevices; topological models
Year: 2018 PMID: 29977667 PMCID: PMC6009438 DOI: 10.3762/bjnano.9.125
Source DB: PubMed Journal: Beilstein J Nanotechnol ISSN: 2190-4286 Impact factor: 3.649
Figure 1Topological model of 2D CNT-graphene hybrid nanocomposite.
Figure 2A fragment of the 2D CNT–graphene hybrid nanocomposite and configuration of an incident electromagnetic wave.
Figure 3The optical conductivity of 2D CNT–graphene hybrid nanocomposites with an intertube distance of 13 hexagons in the direction perpendicular to the nanotube axis. The insets on the right side show the graphs of optical conductivity for the wavelength range of 190–260 nm.
Figure 4The optical conductivity of 2D CNT–graphene hybrid nanocomposites with an intertube distance of 13 hexagons along the nanotube axis. The insets on the right side show the graphs of optical conductivity for the wavelength range of 190–260 nm.
Figure 6The absorption coefficient of 2D CNT-graphene hybrid nanocomposite with the same tube (18,0) and different intertube distances. The insets on the right side show the absorption coefficient for the wavelength range of 190–260 nm.
Figure 5The absorption coefficient of 2D CNT–graphene hybrid nanocomposites with an intertube distance of 13 hexagons. The insets on the right side show the absorption coefficient for the wavelength range of 190–260 nm.
Figure 7Absorption coefficient of a 2D CNT–graphene hybrid nanocomposite (tube (18,0), 13 hexagons intertube distance) as a function of the angle of incidence at different wavelengths.