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Poole-Frenkel emission on functionalized, multilayered-packed reduced graphene oxide nanoplatelets.

Authors :
Jimenez MJM
de Oliveira RF
Shimizu FM
Bufon CCB
Rodrigues V
Gobbi ÂL
Piazzetta MHO
Riul A
Source :
Nanotechnology [Nanotechnology] 2018 Dec 14; Vol. 29 (50), pp. 505703. Date of Electronic Publication: 2018 Sep 14.
Publication Year :
2018

Abstract

The unique electronic, mechanical and optical properties of graphene make it a remarkable 2D material, widely explored in a plethora of applications. However, graphene zero-bandgap and the production of defect-free pristine graphene in large areas still limit some applications. To circumvent these issues, graphene-derived 2D materials have arisen as attractive candidates for low-dimensional systems, which requires a better comprehension of their properties. Here, we report a detailed investigation of the conduction mechanisms of two functionalized reduced graphene oxides (rGOs) nanoplatelets, named GPAH and GPSS. The functionalized rGO nanoplatelets were bottom-up assembled via the layer-by-layer technique, enabling molecular-level thickness control of nanostructures with well-defined composition and structure. For the reported multilayered GPAH/GPSS films the charge carriers followed Mott's law, presenting a typical conduction behavior of 2D systems described by the Poole-Frenkel model. The multilayered GPAH/GPSS nanostructure presented a conductivity of 10 <superscript>-4</superscript> S cm <superscript>-1</superscript> , optical bandgap of ∼3.3 eV and a relative dielectric permittivity (ε <subscript>r</subscript> ) of 6.4. Temperature-dependent I-V measurements indicated a strong variation of ε <subscript>r</subscript> below the critical temperature (T <subscript>C</subscript>  = 237 K), associated with a high dipole reorientation in the formed GPAH/GPSS nanostructure. All these characteristics make the GPAH/GPSS nanocomposite attractive for graphene-oriented applications, such as electronic devices.

Details

Language :
English
ISSN :
1361-6528
Volume :
29
Issue :
50
Database :
MEDLINE
Journal :
Nanotechnology
Publication Type :
Academic Journal
Accession number :
30215613
Full Text :
https://doi.org/10.1088/1361-6528/aae18e