Issue 36, 2020

Modulating the electro-optical properties of doped C3N monolayers and graphene bilayers via mechanical strain and pressure

Abstract

In this work, we investigated systematically the electronic and optical properties of B doped C3N monolayers as well as B and N doped graphene bilayers (BN-Gr@2L). We found that the doping of B atoms leads to an enlarged band gap of the C3N monolayer and when the dopant concentration reaches 12.5%, an indirect-to-direct band gap switching occurs. In addition, with co-doping of B and N atoms on the graphene monolayer in the hexagonal configuration, an electronic transition from semi-metal to semiconductor occurs. Our optical results for B-C3N show a broad absorption spectrum in a wide visible range starting from 400 nm to 1000 nm with strong absorption intensity, making it a suitable candidate for nanoelectronic and optoelectronic applications. Interestingly, a transition from semi-metal to semiconductor emerges in the graphene monolayer with doping of B and N atoms. Furthermore, our results demonstrate that the in-plane strain and out-of-plane strain (pressure) can modulate the band gap of the BN-Gr@2L. The controllable electronic properties and optical features of the doped graphene bilayer by strain engineering may facilitate their practical performance for various applications in future.

Graphical abstract: Modulating the electro-optical properties of doped C3N monolayers and graphene bilayers via mechanical strain and pressure

Supplementary files

Article information

Article type
Paper
Submitted
03 Jul 2020
Accepted
14 Aug 2020
First published
18 Aug 2020

New J. Chem., 2020,44, 15785-15792

Modulating the electro-optical properties of doped C3N monolayers and graphene bilayers via mechanical strain and pressure

A. Bafekry, C. Nguyen, M. M. Obeid and M. Ghergherehchi, New J. Chem., 2020, 44, 15785 DOI: 10.1039/D0NJ03340E

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